| 1 |
/* trees.c -- output deflated data using Huffman coding
|
| 2 |
* Copyright (C) 1995-2002 Jean-loup Gailly
|
| 3 |
* For conditions of distribution and use, see copyright notice in zlib.h
|
| 4 |
*/
|
| 5 |
|
| 6 |
/*
|
| 7 |
* ALGORITHM
|
| 8 |
*
|
| 9 |
* The "deflation" process uses several Huffman trees. The more
|
| 10 |
* common source values are represented by shorter bit sequences.
|
| 11 |
*
|
| 12 |
* Each code tree is stored in a compressed form which is itself
|
| 13 |
* a Huffman encoding of the lengths of all the code strings (in
|
| 14 |
* ascending order by source values). The actual code strings are
|
| 15 |
* reconstructed from the lengths in the inflate process, as described
|
| 16 |
* in the deflate specification.
|
| 17 |
*
|
| 18 |
* REFERENCES
|
| 19 |
*
|
| 20 |
* Deutsch, L.P.,"'Deflate' Compressed Data Format Specification".
|
| 21 |
* Available in ftp.uu.net:/pub/archiving/zip/doc/deflate-1.1.doc
|
| 22 |
*
|
| 23 |
* Storer, James A.
|
| 24 |
* Data Compression: Methods and Theory, pp. 49-50.
|
| 25 |
* Computer Science Press, 1988. ISBN 0-7167-8156-5.
|
| 26 |
*
|
| 27 |
* Sedgewick, R.
|
| 28 |
* Algorithms, p290.
|
| 29 |
* Addison-Wesley, 1983. ISBN 0-201-06672-6.
|
| 30 |
*/
|
| 31 |
|
| 32 |
/* #define GEN_TREES_H */
|
| 33 |
#include "common/setup_before.h"
|
| 34 |
#include "zlib/pvpgn_deflate.h"
|
| 35 |
|
| 36 |
#ifdef DEBUG
|
| 37 |
# include <ctype.h>
|
| 38 |
#endif
|
| 39 |
|
| 40 |
/* ===========================================================================
|
| 41 |
* Constants
|
| 42 |
*/
|
| 43 |
|
| 44 |
#define MAX_BL_BITS 7
|
| 45 |
/* Bit length codes must not exceed MAX_BL_BITS bits */
|
| 46 |
|
| 47 |
#define END_BLOCK 256
|
| 48 |
/* end of block literal code */
|
| 49 |
|
| 50 |
#define REP_3_6 16
|
| 51 |
/* repeat previous bit length 3-6 times (2 bits of repeat count) */
|
| 52 |
|
| 53 |
#define REPZ_3_10 17
|
| 54 |
/* repeat a zero length 3-10 times (3 bits of repeat count) */
|
| 55 |
|
| 56 |
#define REPZ_11_138 18
|
| 57 |
/* repeat a zero length 11-138 times (7 bits of repeat count) */
|
| 58 |
|
| 59 |
local const int extra_lbits[LENGTH_CODES] /* extra bits for each length code */
|
| 60 |
= {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};
|
| 61 |
|
| 62 |
local const int extra_dbits[D_CODES] /* extra bits for each distance code */
|
| 63 |
= {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};
|
| 64 |
|
| 65 |
local const int extra_blbits[BL_CODES]/* extra bits for each bit length code */
|
| 66 |
= {0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,2,3,7};
|
| 67 |
|
| 68 |
local const uch bl_order[BL_CODES]
|
| 69 |
= {16,17,18,0,8,7,9,6,10,5,11,4,12,3,13,2,14,1,15};
|
| 70 |
/* The lengths of the bit length codes are sent in order of decreasing
|
| 71 |
* probability, to avoid transmitting the lengths for unused bit length codes.
|
| 72 |
*/
|
| 73 |
|
| 74 |
#define Buf_size (8 * 2*sizeof(char))
|
| 75 |
/* Number of bits used within bi_buf. (bi_buf might be implemented on
|
| 76 |
* more than 16 bits on some systems.)
|
| 77 |
*/
|
| 78 |
|
| 79 |
/* ===========================================================================
|
| 80 |
* Local data. These are initialized only once.
|
| 81 |
*/
|
| 82 |
|
| 83 |
#define DIST_CODE_LEN 512 /* see definition of array dist_code below */
|
| 84 |
|
| 85 |
#if defined(GEN_TREES_H) || !defined(STDC)
|
| 86 |
/* non ANSI compilers may not accept trees.h */
|
| 87 |
|
| 88 |
local ct_data static_ltree[L_CODES+2];
|
| 89 |
/* The static literal tree. Since the bit lengths are imposed, there is no
|
| 90 |
* need for the L_CODES extra codes used during heap construction. However
|
| 91 |
* The codes 286 and 287 are needed to build a canonical tree (see _tr_init
|
| 92 |
* below).
|
| 93 |
*/
|
| 94 |
|
| 95 |
local ct_data static_dtree[D_CODES];
|
| 96 |
/* The static distance tree. (Actually a trivial tree since all codes use
|
| 97 |
* 5 bits.)
|
| 98 |
*/
|
| 99 |
|
| 100 |
uch pvpgn_dist_code[DIST_CODE_LEN];
|
| 101 |
/* Distance codes. The first 256 values correspond to the distances
|
| 102 |
* 3 .. 258, the last 256 values correspond to the top 8 bits of
|
| 103 |
* the 15 bit distances.
|
| 104 |
*/
|
| 105 |
|
| 106 |
uch pvpgn_length_code[MAX_MATCH-MIN_MATCH+1];
|
| 107 |
/* length code for each normalized match length (0 == MIN_MATCH) */
|
| 108 |
|
| 109 |
local int base_length[LENGTH_CODES];
|
| 110 |
/* First normalized length for each code (0 = MIN_MATCH) */
|
| 111 |
|
| 112 |
local int base_dist[D_CODES];
|
| 113 |
/* First normalized distance for each code (0 = distance of 1) */
|
| 114 |
|
| 115 |
#else
|
| 116 |
# include "zlib/pvpgn_trees.h"
|
| 117 |
#endif /* GEN_TREES_H */
|
| 118 |
|
| 119 |
struct static_tree_desc_s {
|
| 120 |
const ct_data *static_tree; /* static tree or NULL */
|
| 121 |
const intf *extra_bits; /* extra bits for each code or NULL */
|
| 122 |
int extra_base; /* base index for extra_bits */
|
| 123 |
int elems; /* max number of elements in the tree */
|
| 124 |
int max_length; /* max bit length for the codes */
|
| 125 |
};
|
| 126 |
|
| 127 |
local static_tree_desc static_l_desc =
|
| 128 |
{static_ltree, extra_lbits, LITERALS+1, L_CODES, MAX_BITS};
|
| 129 |
|
| 130 |
local static_tree_desc static_d_desc =
|
| 131 |
{static_dtree, extra_dbits, 0, D_CODES, MAX_BITS};
|
| 132 |
|
| 133 |
local static_tree_desc static_bl_desc =
|
| 134 |
{(const ct_data *)0, extra_blbits, 0, BL_CODES, MAX_BL_BITS};
|
| 135 |
|
| 136 |
/* ===========================================================================
|
| 137 |
* Local (static) routines in this file.
|
| 138 |
*/
|
| 139 |
|
| 140 |
local void tr_static_init OF((void));
|
| 141 |
local void init_block OF((deflate_state *s));
|
| 142 |
local void pqdownheap OF((deflate_state *s, ct_data *tree, int k));
|
| 143 |
local void gen_bitlen OF((deflate_state *s, tree_desc *desc));
|
| 144 |
local void gen_codes OF((ct_data *tree, int max_code, ushf *bl_count));
|
| 145 |
local void build_tree OF((deflate_state *s, tree_desc *desc));
|
| 146 |
local void scan_tree OF((deflate_state *s, ct_data *tree, int max_code));
|
| 147 |
local void send_tree OF((deflate_state *s, ct_data *tree, int max_code));
|
| 148 |
local int build_bl_tree OF((deflate_state *s));
|
| 149 |
local void send_all_trees OF((deflate_state *s, int lcodes, int dcodes,
|
| 150 |
int blcodes));
|
| 151 |
local void compress_block OF((deflate_state *s, ct_data *ltree,
|
| 152 |
ct_data *dtree));
|
| 153 |
local void set_data_type OF((deflate_state *s));
|
| 154 |
local unsigned bi_reverse OF((unsigned value, int length));
|
| 155 |
local void bi_windup OF((deflate_state *s));
|
| 156 |
local void bi_flush OF((deflate_state *s));
|
| 157 |
local void copy_block OF((deflate_state *s, charf *buf, unsigned len,
|
| 158 |
int header));
|
| 159 |
|
| 160 |
#ifdef GEN_TREES_H
|
| 161 |
local void gen_trees_header OF((void));
|
| 162 |
#endif
|
| 163 |
|
| 164 |
#ifndef DEBUG
|
| 165 |
# define send_code(s, c, tree) send_bits(s, tree[c].Code, tree[c].Len)
|
| 166 |
/* Send a code of the given tree. c and tree must not have side effects */
|
| 167 |
|
| 168 |
#else /* DEBUG */
|
| 169 |
# define send_code(s, c, tree) \
|
| 170 |
{ if (z_verbose>2) fprintf(stderr,"\ncd %3d ",(c)); \
|
| 171 |
send_bits(s, tree[c].Code, tree[c].Len); }
|
| 172 |
#endif
|
| 173 |
|
| 174 |
/* ===========================================================================
|
| 175 |
* Output a short LSB first on the stream.
|
| 176 |
* IN assertion: there is enough room in pendingBuf.
|
| 177 |
*/
|
| 178 |
#define put_short(s, w) { \
|
| 179 |
put_byte(s, (uch)((w) & 0xff)); \
|
| 180 |
put_byte(s, (uch)((ush)(w) >> 8)); \
|
| 181 |
}
|
| 182 |
|
| 183 |
/* ===========================================================================
|
| 184 |
* Send a value on a given number of bits.
|
| 185 |
* IN assertion: length <= 16 and value fits in length bits.
|
| 186 |
*/
|
| 187 |
#ifdef DEBUG
|
| 188 |
local void send_bits OF((deflate_state *s, int value, int length));
|
| 189 |
|
| 190 |
local void send_bits(s, value, length)
|
| 191 |
deflate_state *s;
|
| 192 |
int value; /* value to send */
|
| 193 |
int length; /* number of bits */
|
| 194 |
{
|
| 195 |
Tracevv((stderr," l %2d v %4x ", length, value));
|
| 196 |
Assert(length > 0 && length <= 15, "invalid length");
|
| 197 |
s->bits_sent += (ulg)length;
|
| 198 |
|
| 199 |
/* If not enough room in bi_buf, use (valid) bits from bi_buf and
|
| 200 |
* (16 - bi_valid) bits from value, leaving (width - (16-bi_valid))
|
| 201 |
* unused bits in value.
|
| 202 |
*/
|
| 203 |
if (s->bi_valid > (int)Buf_size - length) {
|
| 204 |
s->bi_buf |= (value << s->bi_valid);
|
| 205 |
put_short(s, s->bi_buf);
|
| 206 |
s->bi_buf = (ush)value >> (Buf_size - s->bi_valid);
|
| 207 |
s->bi_valid += length - Buf_size;
|
| 208 |
} else {
|
| 209 |
s->bi_buf |= value << s->bi_valid;
|
| 210 |
s->bi_valid += length;
|
| 211 |
}
|
| 212 |
}
|
| 213 |
#else /* !DEBUG */
|
| 214 |
|
| 215 |
#define send_bits(s, value, length) \
|
| 216 |
{ int len = length;\
|
| 217 |
if (s->bi_valid > (int)Buf_size - len) {\
|
| 218 |
int val = value;\
|
| 219 |
s->bi_buf |= (val << s->bi_valid);\
|
| 220 |
put_short(s, s->bi_buf);\
|
| 221 |
s->bi_buf = (ush)val >> (Buf_size - s->bi_valid);\
|
| 222 |
s->bi_valid += len - Buf_size;\
|
| 223 |
} else {\
|
| 224 |
s->bi_buf |= (value) << s->bi_valid;\
|
| 225 |
s->bi_valid += len;\
|
| 226 |
}\
|
| 227 |
}
|
| 228 |
#endif /* DEBUG */
|
| 229 |
|
| 230 |
|
| 231 |
#define MAX(a,b) (a >= b ? a : b)
|
| 232 |
/* the arguments must not have side effects */
|
| 233 |
|
| 234 |
/* ===========================================================================
|
| 235 |
* Initialize the various 'constant' tables.
|
| 236 |
*/
|
| 237 |
local void tr_static_init()
|
| 238 |
{
|
| 239 |
#if defined(GEN_TREES_H) || !defined(STDC)
|
| 240 |
static int static_init_done = 0;
|
| 241 |
int n; /* iterates over tree elements */
|
| 242 |
int bits; /* bit counter */
|
| 243 |
int length; /* length value */
|
| 244 |
int code; /* code value */
|
| 245 |
int dist; /* distance index */
|
| 246 |
ush bl_count[MAX_BITS+1];
|
| 247 |
/* number of codes at each bit length for an optimal tree */
|
| 248 |
|
| 249 |
if (static_init_done) return;
|
| 250 |
|
| 251 |
/* For some embedded targets, global variables are not initialized: */
|
| 252 |
static_l_desc.static_tree = static_ltree;
|
| 253 |
static_l_desc.extra_bits = extra_lbits;
|
| 254 |
static_d_desc.static_tree = static_dtree;
|
| 255 |
static_d_desc.extra_bits = extra_dbits;
|
| 256 |
static_bl_desc.extra_bits = extra_blbits;
|
| 257 |
|
| 258 |
/* Initialize the mapping length (0..255) -> length code (0..28) */
|
| 259 |
length = 0;
|
| 260 |
for (code = 0; code < LENGTH_CODES-1; code++) {
|
| 261 |
base_length[code] = length;
|
| 262 |
for (n = 0; n < (1<<extra_lbits[code]); n++) {
|
| 263 |
_length_code[length++] = (uch)code;
|
| 264 |
}
|
| 265 |
}
|
| 266 |
Assert (length == 256, "tr_static_init: length != 256");
|
| 267 |
/* Note that the length 255 (match length 258) can be represented
|
| 268 |
* in two different ways: code 284 + 5 bits or code 285, so we
|
| 269 |
* overwrite length_code[255] to use the best encoding:
|
| 270 |
*/
|
| 271 |
_length_code[length-1] = (uch)code;
|
| 272 |
|
| 273 |
/* Initialize the mapping dist (0..32K) -> dist code (0..29) */
|
| 274 |
dist = 0;
|
| 275 |
for (code = 0 ; code < 16; code++) {
|
| 276 |
base_dist[code] = dist;
|
| 277 |
for (n = 0; n < (1<<extra_dbits[code]); n++) {
|
| 278 |
_dist_code[dist++] = (uch)code;
|
| 279 |
}
|
| 280 |
}
|
| 281 |
Assert (dist == 256, "tr_static_init: dist != 256");
|
| 282 |
dist >>= 7; /* from now on, all distances are divided by 128 */
|
| 283 |
for ( ; code < D_CODES; code++) {
|
| 284 |
base_dist[code] = dist << 7;
|
| 285 |
for (n = 0; n < (1<<(extra_dbits[code]-7)); n++) {
|
| 286 |
_dist_code[256 + dist++] = (uch)code;
|
| 287 |
}
|
| 288 |
}
|
| 289 |
Assert (dist == 256, "tr_static_init: 256+dist != 512");
|
| 290 |
|
| 291 |
/* Construct the codes of the static literal tree */
|
| 292 |
for (bits = 0; bits <= MAX_BITS; bits++) bl_count[bits] = 0;
|
| 293 |
n = 0;
|
| 294 |
while (n <= 143) static_ltree[n++].Len = 8, bl_count[8]++;
|
| 295 |
while (n <= 255) static_ltree[n++].Len = 9, bl_count[9]++;
|
| 296 |
while (n <= 279) static_ltree[n++].Len = 7, bl_count[7]++;
|
| 297 |
while (n <= 287) static_ltree[n++].Len = 8, bl_count[8]++;
|
| 298 |
/* Codes 286 and 287 do not exist, but we must include them in the
|
| 299 |
* tree construction to get a canonical Huffman tree (longest code
|
| 300 |
* all ones)
|
| 301 |
*/
|
| 302 |
gen_codes((ct_data *)static_ltree, L_CODES+1, bl_count);
|
| 303 |
|
| 304 |
/* The static distance tree is trivial: */
|
| 305 |
for (n = 0; n < D_CODES; n++) {
|
| 306 |
static_dtree[n].Len = 5;
|
| 307 |
static_dtree[n].Code = bi_reverse((unsigned)n, 5);
|
| 308 |
}
|
| 309 |
static_init_done = 1;
|
| 310 |
|
| 311 |
# ifdef GEN_TREES_H
|
| 312 |
gen_trees_header();
|
| 313 |
# endif
|
| 314 |
#endif /* defined(GEN_TREES_H) || !defined(STDC) */
|
| 315 |
}
|
| 316 |
|
| 317 |
/* ===========================================================================
|
| 318 |
* Genererate the file trees.h describing the static trees.
|
| 319 |
*/
|
| 320 |
#ifdef GEN_TREES_H
|
| 321 |
# ifndef DEBUG
|
| 322 |
# include <stdio.h>
|
| 323 |
# endif
|
| 324 |
|
| 325 |
# define SEPARATOR(i, last, width) \
|
| 326 |
((i) == (last)? "\n};\n\n" : \
|
| 327 |
((i) % (width) == (width)-1 ? ",\n" : ", "))
|
| 328 |
|
| 329 |
void pvpgn_gen_trees_header()
|
| 330 |
{
|
| 331 |
FILE *header = fopen("trees.h", "w");
|
| 332 |
int i;
|
| 333 |
|
| 334 |
Assert (header != NULL, "Can't open trees.h");
|
| 335 |
fprintf(header,
|
| 336 |
"/* header created automatically with -DGEN_TREES_H */\n\n");
|
| 337 |
|
| 338 |
fprintf(header, "local const ct_data static_ltree[L_CODES+2] = {\n");
|
| 339 |
for (i = 0; i < L_CODES+2; i++) {
|
| 340 |
fprintf(header, "{{%3u},{%3u}}%s", static_ltree[i].Code,
|
| 341 |
static_ltree[i].Len, SEPARATOR(i, L_CODES+1, 5));
|
| 342 |
}
|
| 343 |
|
| 344 |
fprintf(header, "local const ct_data static_dtree[D_CODES] = {\n");
|
| 345 |
for (i = 0; i < D_CODES; i++) {
|
| 346 |
fprintf(header, "{{%2u},{%2u}}%s", static_dtree[i].Code,
|
| 347 |
static_dtree[i].Len, SEPARATOR(i, D_CODES-1, 5));
|
| 348 |
}
|
| 349 |
|
| 350 |
fprintf(header, "const uch _dist_code[DIST_CODE_LEN] = {\n");
|
| 351 |
for (i = 0; i < DIST_CODE_LEN; i++) {
|
| 352 |
fprintf(header, "%2u%s", _dist_code[i],
|
| 353 |
SEPARATOR(i, DIST_CODE_LEN-1, 20));
|
| 354 |
}
|
| 355 |
|
| 356 |
fprintf(header, "const uch _length_code[MAX_MATCH-MIN_MATCH+1]= {\n");
|
| 357 |
for (i = 0; i < MAX_MATCH-MIN_MATCH+1; i++) {
|
| 358 |
fprintf(header, "%2u%s", _length_code[i],
|
| 359 |
SEPARATOR(i, MAX_MATCH-MIN_MATCH, 20));
|
| 360 |
}
|
| 361 |
|
| 362 |
fprintf(header, "local const int base_length[LENGTH_CODES] = {\n");
|
| 363 |
for (i = 0; i < LENGTH_CODES; i++) {
|
| 364 |
fprintf(header, "%1u%s", base_length[i],
|
| 365 |
SEPARATOR(i, LENGTH_CODES-1, 20));
|
| 366 |
}
|
| 367 |
|
| 368 |
fprintf(header, "local const int base_dist[D_CODES] = {\n");
|
| 369 |
for (i = 0; i < D_CODES; i++) {
|
| 370 |
fprintf(header, "%5u%s", base_dist[i],
|
| 371 |
SEPARATOR(i, D_CODES-1, 10));
|
| 372 |
}
|
| 373 |
|
| 374 |
fclose(header);
|
| 375 |
}
|
| 376 |
#endif /* GEN_TREES_H */
|
| 377 |
|
| 378 |
/* ===========================================================================
|
| 379 |
* Initialize the tree data structures for a new zlib stream.
|
| 380 |
*/
|
| 381 |
void pvpgn_tr_init(s)
|
| 382 |
deflate_state *s;
|
| 383 |
{
|
| 384 |
tr_static_init();
|
| 385 |
|
| 386 |
s->l_desc.dyn_tree = s->dyn_ltree;
|
| 387 |
s->l_desc.stat_desc = &static_l_desc;
|
| 388 |
|
| 389 |
s->d_desc.dyn_tree = s->dyn_dtree;
|
| 390 |
s->d_desc.stat_desc = &static_d_desc;
|
| 391 |
|
| 392 |
s->bl_desc.dyn_tree = s->bl_tree;
|
| 393 |
s->bl_desc.stat_desc = &static_bl_desc;
|
| 394 |
|
| 395 |
s->bi_buf = 0;
|
| 396 |
s->bi_valid = 0;
|
| 397 |
s->last_eob_len = 8; /* enough lookahead for inflate */
|
| 398 |
#ifdef DEBUG
|
| 399 |
s->compressed_len = 0L;
|
| 400 |
s->bits_sent = 0L;
|
| 401 |
#endif
|
| 402 |
|
| 403 |
/* Initialize the first block of the first file: */
|
| 404 |
init_block(s);
|
| 405 |
}
|
| 406 |
|
| 407 |
/* ===========================================================================
|
| 408 |
* Initialize a new block.
|
| 409 |
*/
|
| 410 |
local void init_block(s)
|
| 411 |
deflate_state *s;
|
| 412 |
{
|
| 413 |
int n; /* iterates over tree elements */
|
| 414 |
|
| 415 |
/* Initialize the trees. */
|
| 416 |
for (n = 0; n < L_CODES; n++) s->dyn_ltree[n].Freq = 0;
|
| 417 |
for (n = 0; n < D_CODES; n++) s->dyn_dtree[n].Freq = 0;
|
| 418 |
for (n = 0; n < BL_CODES; n++) s->bl_tree[n].Freq = 0;
|
| 419 |
|
| 420 |
s->dyn_ltree[END_BLOCK].Freq = 1;
|
| 421 |
s->opt_len = s->static_len = 0L;
|
| 422 |
s->last_lit = s->matches = 0;
|
| 423 |
}
|
| 424 |
|
| 425 |
#define SMALLEST 1
|
| 426 |
/* Index within the heap array of least frequent node in the Huffman tree */
|
| 427 |
|
| 428 |
|
| 429 |
/* ===========================================================================
|
| 430 |
* Remove the smallest element from the heap and recreate the heap with
|
| 431 |
* one less element. Updates heap and heap_len.
|
| 432 |
*/
|
| 433 |
#define pqremove(s, tree, top) \
|
| 434 |
{\
|
| 435 |
top = s->heap[SMALLEST]; \
|
| 436 |
s->heap[SMALLEST] = s->heap[s->heap_len--]; \
|
| 437 |
pqdownheap(s, tree, SMALLEST); \
|
| 438 |
}
|
| 439 |
|
| 440 |
/* ===========================================================================
|
| 441 |
* Compares to subtrees, using the tree depth as tie breaker when
|
| 442 |
* the subtrees have equal frequency. This minimizes the worst case length.
|
| 443 |
*/
|
| 444 |
#define smaller(tree, n, m, depth) \
|
| 445 |
(tree[n].Freq < tree[m].Freq || \
|
| 446 |
(tree[n].Freq == tree[m].Freq && depth[n] <= depth[m]))
|
| 447 |
|
| 448 |
/* ===========================================================================
|
| 449 |
* Restore the heap property by moving down the tree starting at node k,
|
| 450 |
* exchanging a node with the smallest of its two sons if necessary, stopping
|
| 451 |
* when the heap property is re-established (each father smaller than its
|
| 452 |
* two sons).
|
| 453 |
*/
|
| 454 |
local void pqdownheap(s, tree, k)
|
| 455 |
deflate_state *s;
|
| 456 |
ct_data *tree; /* the tree to restore */
|
| 457 |
int k; /* node to move down */
|
| 458 |
{
|
| 459 |
int v = s->heap[k];
|
| 460 |
int j = k << 1; /* left son of k */
|
| 461 |
while (j <= s->heap_len) {
|
| 462 |
/* Set j to the smallest of the two sons: */
|
| 463 |
if (j < s->heap_len &&
|
| 464 |
smaller(tree, s->heap[j+1], s->heap[j], s->depth)) {
|
| 465 |
j++;
|
| 466 |
}
|
| 467 |
/* Exit if v is smaller than both sons */
|
| 468 |
if (smaller(tree, v, s->heap[j], s->depth)) break;
|
| 469 |
|
| 470 |
/* Exchange v with the smallest son */
|
| 471 |
s->heap[k] = s->heap[j]; k = j;
|
| 472 |
|
| 473 |
/* And continue down the tree, setting j to the left son of k */
|
| 474 |
j <<= 1;
|
| 475 |
}
|
| 476 |
s->heap[k] = v;
|
| 477 |
}
|
| 478 |
|
| 479 |
/* ===========================================================================
|
| 480 |
* Compute the optimal bit lengths for a tree and update the total bit length
|
| 481 |
* for the current block.
|
| 482 |
* IN assertion: the fields freq and dad are set, heap[heap_max] and
|
| 483 |
* above are the tree nodes sorted by increasing frequency.
|
| 484 |
* OUT assertions: the field len is set to the optimal bit length, the
|
| 485 |
* array bl_count contains the frequencies for each bit length.
|
| 486 |
* The length opt_len is updated; static_len is also updated if stree is
|
| 487 |
* not null.
|
| 488 |
*/
|
| 489 |
local void gen_bitlen(s, desc)
|
| 490 |
deflate_state *s;
|
| 491 |
tree_desc *desc; /* the tree descriptor */
|
| 492 |
{
|
| 493 |
ct_data *tree = desc->dyn_tree;
|
| 494 |
int max_code = desc->max_code;
|
| 495 |
const ct_data *stree = desc->stat_desc->static_tree;
|
| 496 |
const intf *extra = desc->stat_desc->extra_bits;
|
| 497 |
int base = desc->stat_desc->extra_base;
|
| 498 |
int max_length = desc->stat_desc->max_length;
|
| 499 |
int h; /* heap index */
|
| 500 |
int n, m; /* iterate over the tree elements */
|
| 501 |
int bits; /* bit length */
|
| 502 |
int xbits; /* extra bits */
|
| 503 |
ush f; /* frequency */
|
| 504 |
int overflow = 0; /* number of elements with bit length too large */
|
| 505 |
|
| 506 |
for (bits = 0; bits <= MAX_BITS; bits++) s->bl_count[bits] = 0;
|
| 507 |
|
| 508 |
/* In a first pass, compute the optimal bit lengths (which may
|
| 509 |
* overflow in the case of the bit length tree).
|
| 510 |
*/
|
| 511 |
tree[s->heap[s->heap_max]].Len = 0; /* root of the heap */
|
| 512 |
|
| 513 |
for (h = s->heap_max+1; h < HEAP_SIZE; h++) {
|
| 514 |
n = s->heap[h];
|
| 515 |
bits = tree[tree[n].Dad].Len + 1;
|
| 516 |
if (bits > max_length) bits = max_length, overflow++;
|
| 517 |
tree[n].Len = (ush)bits;
|
| 518 |
/* We overwrite tree[n].Dad which is no longer needed */
|
| 519 |
|
| 520 |
if (n > max_code) continue; /* not a leaf node */
|
| 521 |
|
| 522 |
s->bl_count[bits]++;
|
| 523 |
xbits = 0;
|
| 524 |
if (n >= base) xbits = extra[n-base];
|
| 525 |
f = tree[n].Freq;
|
| 526 |
s->opt_len += (ulg)f * (bits + xbits);
|
| 527 |
if (stree) s->static_len += (ulg)f * (stree[n].Len + xbits);
|
| 528 |
}
|
| 529 |
if (overflow == 0) return;
|
| 530 |
|
| 531 |
Trace((stderr,"\nbit length overflow\n"));
|
| 532 |
/* This happens for example on obj2 and pic of the Calgary corpus */
|
| 533 |
|
| 534 |
/* Find the first bit length which could increase: */
|
| 535 |
do {
|
| 536 |
bits = max_length-1;
|
| 537 |
while (s->bl_count[bits] == 0) bits--;
|
| 538 |
s->bl_count[bits]--; /* move one leaf down the tree */
|
| 539 |
s->bl_count[bits+1] += 2; /* move one overflow item as its brother */
|
| 540 |
s->bl_count[max_length]--;
|
| 541 |
/* The brother of the overflow item also moves one step up,
|
| 542 |
* but this does not affect bl_count[max_length]
|
| 543 |
*/
|
| 544 |
overflow -= 2;
|
| 545 |
} while (overflow > 0);
|
| 546 |
|
| 547 |
/* Now recompute all bit lengths, scanning in increasing frequency.
|
| 548 |
* h is still equal to HEAP_SIZE. (It is simpler to reconstruct all
|
| 549 |
* lengths instead of fixing only the wrong ones. This idea is taken
|
| 550 |
* from 'ar' written by Haruhiko Okumura.)
|
| 551 |
*/
|
| 552 |
for (bits = max_length; bits != 0; bits--) {
|
| 553 |
n = s->bl_count[bits];
|
| 554 |
while (n != 0) {
|
| 555 |
m = s->heap[--h];
|
| 556 |
if (m > max_code) continue;
|
| 557 |
if (tree[m].Len != (unsigned) bits) {
|
| 558 |
Trace((stderr,"code %d bits %d->%d\n", m, tree[m].Len, bits));
|
| 559 |
s->opt_len += ((long)bits - (long)tree[m].Len)
|
| 560 |
*(long)tree[m].Freq;
|
| 561 |
tree[m].Len = (ush)bits;
|
| 562 |
}
|
| 563 |
n--;
|
| 564 |
}
|
| 565 |
}
|
| 566 |
}
|
| 567 |
|
| 568 |
/* ===========================================================================
|
| 569 |
* Generate the codes for a given tree and bit counts (which need not be
|
| 570 |
* optimal).
|
| 571 |
* IN assertion: the array bl_count contains the bit length statistics for
|
| 572 |
* the given tree and the field len is set for all tree elements.
|
| 573 |
* OUT assertion: the field code is set for all tree elements of non
|
| 574 |
* zero code length.
|
| 575 |
*/
|
| 576 |
local void gen_codes (tree, max_code, bl_count)
|
| 577 |
ct_data *tree; /* the tree to decorate */
|
| 578 |
int max_code; /* largest code with non zero frequency */
|
| 579 |
ushf *bl_count; /* number of codes at each bit length */
|
| 580 |
{
|
| 581 |
ush next_code[MAX_BITS+1]; /* next code value for each bit length */
|
| 582 |
ush code = 0; /* running code value */
|
| 583 |
int bits; /* bit index */
|
| 584 |
int n; /* code index */
|
| 585 |
|
| 586 |
/* The distribution counts are first used to generate the code values
|
| 587 |
* without bit reversal.
|
| 588 |
*/
|
| 589 |
for (bits = 1; bits <= MAX_BITS; bits++) {
|
| 590 |
next_code[bits] = code = (code + bl_count[bits-1]) << 1;
|
| 591 |
}
|
| 592 |
/* Check that the bit counts in bl_count are consistent. The last code
|
| 593 |
* must be all ones.
|
| 594 |
*/
|
| 595 |
Assert (code + bl_count[MAX_BITS]-1 == (1<<MAX_BITS)-1,
|
| 596 |
"inconsistent bit counts");
|
| 597 |
Tracev((stderr,"\ngen_codes: max_code %d ", max_code));
|
| 598 |
|
| 599 |
for (n = 0; n <= max_code; n++) {
|
| 600 |
int len = tree[n].Len;
|
| 601 |
if (len == 0) continue;
|
| 602 |
/* Now reverse the bits */
|
| 603 |
tree[n].Code = bi_reverse(next_code[len]++, len);
|
| 604 |
|
| 605 |
Tracecv(tree != static_ltree, (stderr,"\nn %3d %c l %2d c %4x (%x) ",
|
| 606 |
n, (isgraph(n) ? n : ' '), len, tree[n].Code, next_code[len]-1));
|
| 607 |
}
|
| 608 |
}
|
| 609 |
|
| 610 |
/* ===========================================================================
|
| 611 |
* Construct one Huffman tree and assigns the code bit strings and lengths.
|
| 612 |
* Update the total bit length for the current block.
|
| 613 |
* IN assertion: the field freq is set for all tree elements.
|
| 614 |
* OUT assertions: the fields len and code are set to the optimal bit length
|
| 615 |
* and corresponding code. The length opt_len is updated; static_len is
|
| 616 |
* also updated if stree is not null. The field max_code is set.
|
| 617 |
*/
|
| 618 |
local void build_tree(s, desc)
|
| 619 |
deflate_state *s;
|
| 620 |
tree_desc *desc; /* the tree descriptor */
|
| 621 |
{
|
| 622 |
ct_data *tree = desc->dyn_tree;
|
| 623 |
const ct_data *stree = desc->stat_desc->static_tree;
|
| 624 |
int elems = desc->stat_desc->elems;
|
| 625 |
int n, m; /* iterate over heap elements */
|
| 626 |
int max_code = -1; /* largest code with non zero frequency */
|
| 627 |
int node; /* new node being created */
|
| 628 |
|
| 629 |
/* Construct the initial heap, with least frequent element in
|
| 630 |
* heap[SMALLEST]. The sons of heap[n] are heap[2*n] and heap[2*n+1].
|
| 631 |
* heap[0] is not used.
|
| 632 |
*/
|
| 633 |
s->heap_len = 0, s->heap_max = HEAP_SIZE;
|
| 634 |
|
| 635 |
for (n = 0; n < elems; n++) {
|
| 636 |
if (tree[n].Freq != 0) {
|
| 637 |
s->heap[++(s->heap_len)] = max_code = n;
|
| 638 |
s->depth[n] = 0;
|
| 639 |
} else {
|
| 640 |
tree[n].Len = 0;
|
| 641 |
}
|
| 642 |
}
|
| 643 |
|
| 644 |
/* The pkzip format requires that at least one distance code exists,
|
| 645 |
* and that at least one bit should be sent even if there is only one
|
| 646 |
* possible code. So to avoid special checks later on we force at least
|
| 647 |
* two codes of non zero frequency.
|
| 648 |
*/
|
| 649 |
while (s->heap_len < 2) {
|
| 650 |
node = s->heap[++(s->heap_len)] = (max_code < 2 ? ++max_code : 0);
|
| 651 |
tree[node].Freq = 1;
|
| 652 |
s->depth[node] = 0;
|
| 653 |
s->opt_len--; if (stree) s->static_len -= stree[node].Len;
|
| 654 |
/* node is 0 or 1 so it does not have extra bits */
|
| 655 |
}
|
| 656 |
desc->max_code = max_code;
|
| 657 |
|
| 658 |
/* The elements heap[heap_len/2+1 .. heap_len] are leaves of the tree,
|
| 659 |
* establish sub-heaps of increasing lengths:
|
| 660 |
*/
|
| 661 |
for (n = s->heap_len/2; n >= 1; n--) pqdownheap(s, tree, n);
|
| 662 |
|
| 663 |
/* Construct the Huffman tree by repeatedly combining the least two
|
| 664 |
* frequent nodes.
|
| 665 |
*/
|
| 666 |
node = elems; /* next internal node of the tree */
|
| 667 |
do {
|
| 668 |
pqremove(s, tree, n); /* n = node of least frequency */
|
| 669 |
m = s->heap[SMALLEST]; /* m = node of next least frequency */
|
| 670 |
|
| 671 |
s->heap[--(s->heap_max)] = n; /* keep the nodes sorted by frequency */
|
| 672 |
s->heap[--(s->heap_max)] = m;
|
| 673 |
|
| 674 |
/* Create a new node father of n and m */
|
| 675 |
tree[node].Freq = tree[n].Freq + tree[m].Freq;
|
| 676 |
s->depth[node] = (uch) (MAX(s->depth[n], s->depth[m]) + 1);
|
| 677 |
tree[n].Dad = tree[m].Dad = (ush)node;
|
| 678 |
#ifdef DUMP_BL_TREE
|
| 679 |
if (tree == s->bl_tree) {
|
| 680 |
fprintf(stderr,"\nnode %d(%d), sons %d(%d) %d(%d)",
|
| 681 |
node, tree[node].Freq, n, tree[n].Freq, m, tree[m].Freq);
|
| 682 |
}
|
| 683 |
#endif
|
| 684 |
/* and insert the new node in the heap */
|
| 685 |
s->heap[SMALLEST] = node++;
|
| 686 |
pqdownheap(s, tree, SMALLEST);
|
| 687 |
|
| 688 |
} while (s->heap_len >= 2);
|
| 689 |
|
| 690 |
s->heap[--(s->heap_max)] = s->heap[SMALLEST];
|
| 691 |
|
| 692 |
/* At this point, the fields freq and dad are set. We can now
|
| 693 |
* generate the bit lengths.
|
| 694 |
*/
|
| 695 |
gen_bitlen(s, (tree_desc *)desc);
|
| 696 |
|
| 697 |
/* The field len is now set, we can generate the bit codes */
|
| 698 |
gen_codes ((ct_data *)tree, max_code, s->bl_count);
|
| 699 |
}
|
| 700 |
|
| 701 |
/* ===========================================================================
|
| 702 |
* Scan a literal or distance tree to determine the frequencies of the codes
|
| 703 |
* in the bit length tree.
|
| 704 |
*/
|
| 705 |
local void scan_tree (s, tree, max_code)
|
| 706 |
deflate_state *s;
|
| 707 |
ct_data *tree; /* the tree to be scanned */
|
| 708 |
int max_code; /* and its largest code of non zero frequency */
|
| 709 |
{
|
| 710 |
int n; /* iterates over all tree elements */
|
| 711 |
int prevlen = -1; /* last emitted length */
|
| 712 |
int curlen; /* length of current code */
|
| 713 |
int nextlen = tree[0].Len; /* length of next code */
|
| 714 |
int count = 0; /* repeat count of the current code */
|
| 715 |
int max_count = 7; /* max repeat count */
|
| 716 |
int min_count = 4; /* min repeat count */
|
| 717 |
|
| 718 |
if (nextlen == 0) max_count = 138, min_count = 3;
|
| 719 |
tree[max_code+1].Len = (ush)0xffff; /* guard */
|
| 720 |
|
| 721 |
for (n = 0; n <= max_code; n++) {
|
| 722 |
curlen = nextlen; nextlen = tree[n+1].Len;
|
| 723 |
if (++count < max_count && curlen == nextlen) {
|
| 724 |
continue;
|
| 725 |
} else if (count < min_count) {
|
| 726 |
s->bl_tree[curlen].Freq += count;
|
| 727 |
} else if (curlen != 0) {
|
| 728 |
if (curlen != prevlen) s->bl_tree[curlen].Freq++;
|
| 729 |
s->bl_tree[REP_3_6].Freq++;
|
| 730 |
} else if (count <= 10) {
|
| 731 |
s->bl_tree[REPZ_3_10].Freq++;
|
| 732 |
} else {
|
| 733 |
s->bl_tree[REPZ_11_138].Freq++;
|
| 734 |
}
|
| 735 |
count = 0; prevlen = curlen;
|
| 736 |
if (nextlen == 0) {
|
| 737 |
max_count = 138, min_count = 3;
|
| 738 |
} else if (curlen == nextlen) {
|
| 739 |
max_count = 6, min_count = 3;
|
| 740 |
} else {
|
| 741 |
max_count = 7, min_count = 4;
|
| 742 |
}
|
| 743 |
}
|
| 744 |
}
|
| 745 |
|
| 746 |
/* ===========================================================================
|
| 747 |
* Send a literal or distance tree in compressed form, using the codes in
|
| 748 |
* bl_tree.
|
| 749 |
*/
|
| 750 |
local void send_tree (s, tree, max_code)
|
| 751 |
deflate_state *s;
|
| 752 |
ct_data *tree; /* the tree to be scanned */
|
| 753 |
int max_code; /* and its largest code of non zero frequency */
|
| 754 |
{
|
| 755 |
int n; /* iterates over all tree elements */
|
| 756 |
int prevlen = -1; /* last emitted length */
|
| 757 |
int curlen; /* length of current code */
|
| 758 |
int nextlen = tree[0].Len; /* length of next code */
|
| 759 |
int count = 0; /* repeat count of the current code */
|
| 760 |
int max_count = 7; /* max repeat count */
|
| 761 |
int min_count = 4; /* min repeat count */
|
| 762 |
|
| 763 |
/* tree[max_code+1].Len = -1; */ /* guard already set */
|
| 764 |
if (nextlen == 0) max_count = 138, min_count = 3;
|
| 765 |
|
| 766 |
for (n = 0; n <= max_code; n++) {
|
| 767 |
curlen = nextlen; nextlen = tree[n+1].Len;
|
| 768 |
if (++count < max_count && curlen == nextlen) {
|
| 769 |
continue;
|
| 770 |
} else if (count < min_count) {
|
| 771 |
do { send_code(s, curlen, s->bl_tree); } while (--count != 0);
|
| 772 |
|
| 773 |
} else if (curlen != 0) {
|
| 774 |
if (curlen != prevlen) {
|
| 775 |
send_code(s, curlen, s->bl_tree); count--;
|
| 776 |
}
|
| 777 |
Assert(count >= 3 && count <= 6, " 3_6?");
|
| 778 |
send_code(s, REP_3_6, s->bl_tree); send_bits(s, count-3, 2);
|
| 779 |
|
| 780 |
} else if (count <= 10) {
|
| 781 |
send_code(s, REPZ_3_10, s->bl_tree); send_bits(s, count-3, 3);
|
| 782 |
|
| 783 |
} else {
|
| 784 |
send_code(s, REPZ_11_138, s->bl_tree); send_bits(s, count-11, 7);
|
| 785 |
}
|
| 786 |
count = 0; prevlen = curlen;
|
| 787 |
if (nextlen == 0) {
|
| 788 |
max_count = 138, min_count = 3;
|
| 789 |
} else if (curlen == nextlen) {
|
| 790 |
max_count = 6, min_count = 3;
|
| 791 |
} else {
|
| 792 |
max_count = 7, min_count = 4;
|
| 793 |
}
|
| 794 |
}
|
| 795 |
}
|
| 796 |
|
| 797 |
/* ===========================================================================
|
| 798 |
* Construct the Huffman tree for the bit lengths and return the index in
|
| 799 |
* bl_order of the last bit length code to send.
|
| 800 |
*/
|
| 801 |
local int build_bl_tree(s)
|
| 802 |
deflate_state *s;
|
| 803 |
{
|
| 804 |
int max_blindex; /* index of last bit length code of non zero freq */
|
| 805 |
|
| 806 |
/* Determine the bit length frequencies for literal and distance trees */
|
| 807 |
scan_tree(s, (ct_data *)s->dyn_ltree, s->l_desc.max_code);
|
| 808 |
scan_tree(s, (ct_data *)s->dyn_dtree, s->d_desc.max_code);
|
| 809 |
|
| 810 |
/* Build the bit length tree: */
|
| 811 |
build_tree(s, (tree_desc *)(&(s->bl_desc)));
|
| 812 |
/* opt_len now includes the length of the tree representations, except
|
| 813 |
* the lengths of the bit lengths codes and the 5+5+4 bits for the counts.
|
| 814 |
*/
|
| 815 |
|
| 816 |
/* Determine the number of bit length codes to send. The pkzip format
|
| 817 |
* requires that at least 4 bit length codes be sent. (appnote.txt says
|
| 818 |
* 3 but the actual value used is 4.)
|
| 819 |
*/
|
| 820 |
for (max_blindex = BL_CODES-1; max_blindex >= 3; max_blindex--) {
|
| 821 |
if (s->bl_tree[bl_order[max_blindex]].Len != 0) break;
|
| 822 |
}
|
| 823 |
/* Update opt_len to include the bit length tree and counts */
|
| 824 |
s->opt_len += 3*(max_blindex+1) + 5+5+4;
|
| 825 |
Tracev((stderr, "\ndyn trees: dyn %ld, stat %ld",
|
| 826 |
s->opt_len, s->static_len));
|
| 827 |
|
| 828 |
return max_blindex;
|
| 829 |
}
|
| 830 |
|
| 831 |
/* ===========================================================================
|
| 832 |
* Send the header for a block using dynamic Huffman trees: the counts, the
|
| 833 |
* lengths of the bit length codes, the literal tree and the distance tree.
|
| 834 |
* IN assertion: lcodes >= 257, dcodes >= 1, blcodes >= 4.
|
| 835 |
*/
|
| 836 |
local void send_all_trees(s, lcodes, dcodes, blcodes)
|
| 837 |
deflate_state *s;
|
| 838 |
int lcodes, dcodes, blcodes; /* number of codes for each tree */
|
| 839 |
{
|
| 840 |
int rank; /* index in bl_order */
|
| 841 |
|
| 842 |
Assert (lcodes >= 257 && dcodes >= 1 && blcodes >= 4, "not enough codes");
|
| 843 |
Assert (lcodes <= L_CODES && dcodes <= D_CODES && blcodes <= BL_CODES,
|
| 844 |
"too many codes");
|
| 845 |
Tracev((stderr, "\nbl counts: "));
|
| 846 |
send_bits(s, lcodes-257, 5); /* not +255 as stated in appnote.txt */
|
| 847 |
send_bits(s, dcodes-1, 5);
|
| 848 |
send_bits(s, blcodes-4, 4); /* not -3 as stated in appnote.txt */
|
| 849 |
for (rank = 0; rank < blcodes; rank++) {
|
| 850 |
Tracev((stderr, "\nbl code %2d ", bl_order[rank]));
|
| 851 |
send_bits(s, s->bl_tree[bl_order[rank]].Len, 3);
|
| 852 |
}
|
| 853 |
Tracev((stderr, "\nbl tree: sent %ld", s->bits_sent));
|
| 854 |
|
| 855 |
send_tree(s, (ct_data *)s->dyn_ltree, lcodes-1); /* literal tree */
|
| 856 |
Tracev((stderr, "\nlit tree: sent %ld", s->bits_sent));
|
| 857 |
|
| 858 |
send_tree(s, (ct_data *)s->dyn_dtree, dcodes-1); /* distance tree */
|
| 859 |
Tracev((stderr, "\ndist tree: sent %ld", s->bits_sent));
|
| 860 |
}
|
| 861 |
|
| 862 |
/* ===========================================================================
|
| 863 |
* Send a stored block
|
| 864 |
*/
|
| 865 |
void pvpgn_tr_stored_block(s, buf, stored_len, eof)
|
| 866 |
deflate_state *s;
|
| 867 |
charf *buf; /* input block */
|
| 868 |
ulg stored_len; /* length of input block */
|
| 869 |
int eof; /* true if this is the last block for a file */
|
| 870 |
{
|
| 871 |
send_bits(s, (STORED_BLOCK<<1)+eof, 3); /* send block type */
|
| 872 |
#ifdef DEBUG
|
| 873 |
s->compressed_len = (s->compressed_len + 3 + 7) & (ulg)~7L;
|
| 874 |
s->compressed_len += (stored_len + 4) << 3;
|
| 875 |
#endif
|
| 876 |
copy_block(s, buf, (unsigned)stored_len, 1); /* with header */
|
| 877 |
}
|
| 878 |
|
| 879 |
/* ===========================================================================
|
| 880 |
* Send one empty static block to give enough lookahead for inflate.
|
| 881 |
* This takes 10 bits, of which 7 may remain in the bit buffer.
|
| 882 |
* The current inflate code requires 9 bits of lookahead. If the
|
| 883 |
* last two codes for the previous block (real code plus EOB) were coded
|
| 884 |
* on 5 bits or less, inflate may have only 5+3 bits of lookahead to decode
|
| 885 |
* the last real code. In this case we send two empty static blocks instead
|
| 886 |
* of one. (There are no problems if the previous block is stored or fixed.)
|
| 887 |
* To simplify the code, we assume the worst case of last real code encoded
|
| 888 |
* on one bit only.
|
| 889 |
*/
|
| 890 |
void pvpgn_tr_align(s)
|
| 891 |
deflate_state *s;
|
| 892 |
{
|
| 893 |
send_bits(s, STATIC_TREES<<1, 3);
|
| 894 |
send_code(s, END_BLOCK, static_ltree);
|
| 895 |
#ifdef DEBUG
|
| 896 |
s->compressed_len += 10L; /* 3 for block type, 7 for EOB */
|
| 897 |
#endif
|
| 898 |
bi_flush(s);
|
| 899 |
/* Of the 10 bits for the empty block, we have already sent
|
| 900 |
* (10 - bi_valid) bits. The lookahead for the last real code (before
|
| 901 |
* the EOB of the previous block) was thus at least one plus the length
|
| 902 |
* of the EOB plus what we have just sent of the empty static block.
|
| 903 |
*/
|
| 904 |
if (1 + s->last_eob_len + 10 - s->bi_valid < 9) {
|
| 905 |
send_bits(s, STATIC_TREES<<1, 3);
|
| 906 |
send_code(s, END_BLOCK, static_ltree);
|
| 907 |
#ifdef DEBUG
|
| 908 |
s->compressed_len += 10L;
|
| 909 |
#endif
|
| 910 |
bi_flush(s);
|
| 911 |
}
|
| 912 |
s->last_eob_len = 7;
|
| 913 |
}
|
| 914 |
|
| 915 |
/* ===========================================================================
|
| 916 |
* Determine the best encoding for the current block: dynamic trees, static
|
| 917 |
* trees or store, and output the encoded block to the zip file.
|
| 918 |
*/
|
| 919 |
void pvpgn_tr_flush_block(s, buf, stored_len, eof)
|
| 920 |
deflate_state *s;
|
| 921 |
charf *buf; /* input block, or NULL if too old */
|
| 922 |
ulg stored_len; /* length of input block */
|
| 923 |
int eof; /* true if this is the last block for a file */
|
| 924 |
{
|
| 925 |
ulg opt_lenb, static_lenb; /* opt_len and static_len in bytes */
|
| 926 |
int max_blindex = 0; /* index of last bit length code of non zero freq */
|
| 927 |
|
| 928 |
/* Build the Huffman trees unless a stored block is forced */
|
| 929 |
if (s->level > 0) {
|
| 930 |
|
| 931 |
/* Check if the file is ascii or binary */
|
| 932 |
if (s->data_type == Z_UNKNOWN) set_data_type(s);
|
| 933 |
|
| 934 |
/* Construct the literal and distance trees */
|
| 935 |
build_tree(s, (tree_desc *)(&(s->l_desc)));
|
| 936 |
Tracev((stderr, "\nlit data: dyn %ld, stat %ld", s->opt_len,
|
| 937 |
s->static_len));
|
| 938 |
|
| 939 |
build_tree(s, (tree_desc *)(&(s->d_desc)));
|
| 940 |
Tracev((stderr, "\ndist data: dyn %ld, stat %ld", s->opt_len,
|
| 941 |
s->static_len));
|
| 942 |
/* At this point, opt_len and static_len are the total bit lengths of
|
| 943 |
* the compressed block data, excluding the tree representations.
|
| 944 |
*/
|
| 945 |
|
| 946 |
/* Build the bit length tree for the above two trees, and get the index
|
| 947 |
* in bl_order of the last bit length code to send.
|
| 948 |
*/
|
| 949 |
max_blindex = build_bl_tree(s);
|
| 950 |
|
| 951 |
/* Determine the best encoding. Compute first the block length in bytes*/
|
| 952 |
opt_lenb = (s->opt_len+3+7)>>3;
|
| 953 |
static_lenb = (s->static_len+3+7)>>3;
|
| 954 |
|
| 955 |
Tracev((stderr, "\nopt %lu(%lu) stat %lu(%lu) stored %lu lit %u ",
|
| 956 |
opt_lenb, s->opt_len, static_lenb, s->static_len, stored_len,
|
| 957 |
s->last_lit));
|
| 958 |
|
| 959 |
if (static_lenb <= opt_lenb) opt_lenb = static_lenb;
|
| 960 |
|
| 961 |
} else {
|
| 962 |
Assert(buf != (char*)0, "lost buf");
|
| 963 |
opt_lenb = static_lenb = stored_len + 5; /* force a stored block */
|
| 964 |
}
|
| 965 |
|
| 966 |
#ifdef FORCE_STORED
|
| 967 |
if (buf != (char*)0) { /* force stored block */
|
| 968 |
#else
|
| 969 |
if (stored_len+4 <= opt_lenb && buf != (char*)0) {
|
| 970 |
/* 4: two words for the lengths */
|
| 971 |
#endif
|
| 972 |
/* The test buf != NULL is only necessary if LIT_BUFSIZE > WSIZE.
|
| 973 |
* Otherwise we can't have processed more than WSIZE input bytes since
|
| 974 |
* the last block flush, because compression would have been
|
| 975 |
* successful. If LIT_BUFSIZE <= WSIZE, it is never too late to
|
| 976 |
* transform a block into a stored block.
|
| 977 |
*/
|
| 978 |
pvpgn_tr_stored_block(s, buf, stored_len, eof);
|
| 979 |
|
| 980 |
#ifdef FORCE_STATIC
|
| 981 |
} else if (static_lenb >= 0) { /* force static trees */
|
| 982 |
#else
|
| 983 |
} else if (static_lenb == opt_lenb) {
|
| 984 |
#endif
|
| 985 |
send_bits(s, (STATIC_TREES<<1)+eof, 3);
|
| 986 |
compress_block(s, (ct_data *)static_ltree, (ct_data *)static_dtree);
|
| 987 |
#ifdef DEBUG
|
| 988 |
s->compressed_len += 3 + s->static_len;
|
| 989 |
#endif
|
| 990 |
} else {
|
| 991 |
send_bits(s, (DYN_TREES<<1)+eof, 3);
|
| 992 |
send_all_trees(s, s->l_desc.max_code+1, s->d_desc.max_code+1,
|
| 993 |
max_blindex+1);
|
| 994 |
compress_block(s, (ct_data *)s->dyn_ltree, (ct_data *)s->dyn_dtree);
|
| 995 |
#ifdef DEBUG
|
| 996 |
s->compressed_len += 3 + s->opt_len;
|
| 997 |
#endif
|
| 998 |
}
|
| 999 |
Assert (s->compressed_len == s->bits_sent, "bad compressed size");
|
| 1000 |
/* The above check is made mod 2^32, for files larger than 512 MB
|
| 1001 |
* and uLong implemented on 32 bits.
|
| 1002 |
*/
|
| 1003 |
init_block(s);
|
| 1004 |
|
| 1005 |
if (eof) {
|
| 1006 |
bi_windup(s);
|
| 1007 |
#ifdef DEBUG
|
| 1008 |
s->compressed_len += 7; /* align on byte boundary */
|
| 1009 |
#endif
|
| 1010 |
}
|
| 1011 |
Tracev((stderr,"\ncomprlen %lu(%lu) ", s->compressed_len>>3,
|
| 1012 |
s->compressed_len-7*eof));
|
| 1013 |
}
|
| 1014 |
|
| 1015 |
/* ===========================================================================
|
| 1016 |
* Save the match info and tally the frequency counts. Return true if
|
| 1017 |
* the current block must be flushed.
|
| 1018 |
*/
|
| 1019 |
int pvpgn_tr_tally (s, dist, lc)
|
| 1020 |
deflate_state *s;
|
| 1021 |
unsigned dist; /* distance of matched string */
|
| 1022 |
unsigned lc; /* match length-MIN_MATCH or unmatched char (if dist==0) */
|
| 1023 |
{
|
| 1024 |
s->d_buf[s->last_lit] = (ush)dist;
|
| 1025 |
s->l_buf[s->last_lit++] = (uch)lc;
|
| 1026 |
if (dist == 0) {
|
| 1027 |
/* lc is the unmatched char */
|
| 1028 |
s->dyn_ltree[lc].Freq++;
|
| 1029 |
} else {
|
| 1030 |
s->matches++;
|
| 1031 |
/* Here, lc is the match length - MIN_MATCH */
|
| 1032 |
dist--; /* dist = match distance - 1 */
|
| 1033 |
Assert((ush)dist < (ush)MAX_DIST(s) &&
|
| 1034 |
(ush)lc <= (ush)(MAX_MATCH-MIN_MATCH) &&
|
| 1035 |
(ush)d_code(dist) < (ush)D_CODES, "_tr_tally: bad match");
|
| 1036 |
|
| 1037 |
s->dyn_ltree[pvpgn_length_code[lc]+LITERALS+1].Freq++;
|
| 1038 |
s->dyn_dtree[d_code(dist)].Freq++;
|
| 1039 |
}
|
| 1040 |
|
| 1041 |
#ifdef TRUNCATE_BLOCK
|
| 1042 |
/* Try to guess if it is profitable to stop the current block here */
|
| 1043 |
if ((s->last_lit & 0x1fff) == 0 && s->level > 2) {
|
| 1044 |
/* Compute an upper bound for the compressed length */
|
| 1045 |
ulg out_length = (ulg)s->last_lit*8L;
|
| 1046 |
ulg in_length = (ulg)((long)s->strstart - s->block_start);
|
| 1047 |
int dcode;
|
| 1048 |
for (dcode = 0; dcode < D_CODES; dcode++) {
|
| 1049 |
out_length += (ulg)s->dyn_dtree[dcode].Freq *
|
| 1050 |
(5L+extra_dbits[dcode]);
|
| 1051 |
}
|
| 1052 |
out_length >>= 3;
|
| 1053 |
Tracev((stderr,"\nlast_lit %u, in %ld, out ~%ld(%ld%%) ",
|
| 1054 |
s->last_lit, in_length, out_length,
|
| 1055 |
100L - out_length*100L/in_length));
|
| 1056 |
if (s->matches < s->last_lit/2 && out_length < in_length/2) return 1;
|
| 1057 |
}
|
| 1058 |
#endif
|
| 1059 |
return (s->last_lit == s->lit_bufsize-1);
|
| 1060 |
/* We avoid equality with lit_bufsize because of wraparound at 64K
|
| 1061 |
* on 16 bit machines and because stored blocks are restricted to
|
| 1062 |
* 64K-1 bytes.
|
| 1063 |
*/
|
| 1064 |
}
|
| 1065 |
|
| 1066 |
/* ===========================================================================
|
| 1067 |
* Send the block data compressed using the given Huffman trees
|
| 1068 |
*/
|
| 1069 |
local void compress_block(s, ltree, dtree)
|
| 1070 |
deflate_state *s;
|
| 1071 |
ct_data *ltree; /* literal tree */
|
| 1072 |
ct_data *dtree; /* distance tree */
|
| 1073 |
{
|
| 1074 |
unsigned dist; /* distance of matched string */
|
| 1075 |
int lc; /* match length or unmatched char (if dist == 0) */
|
| 1076 |
unsigned lx = 0; /* running index in l_buf */
|
| 1077 |
unsigned code; /* the code to send */
|
| 1078 |
int extra; /* number of extra bits to send */
|
| 1079 |
|
| 1080 |
if (s->last_lit != 0) do {
|
| 1081 |
dist = s->d_buf[lx];
|
| 1082 |
lc = s->l_buf[lx++];
|
| 1083 |
if (dist == 0) {
|
| 1084 |
send_code(s, lc, ltree); /* send a literal byte */
|
| 1085 |
Tracecv(isgraph(lc), (stderr," '%c' ", lc));
|
| 1086 |
} else {
|
| 1087 |
/* Here, lc is the match length - MIN_MATCH */
|
| 1088 |
code = pvpgn_length_code[lc];
|
| 1089 |
send_code(s, code+LITERALS+1, ltree); /* send the length code */
|
| 1090 |
extra = extra_lbits[code];
|
| 1091 |
if (extra != 0) {
|
| 1092 |
lc -= base_length[code];
|
| 1093 |
send_bits(s, lc, extra); /* send the extra length bits */
|
| 1094 |
}
|
| 1095 |
dist--; /* dist is now the match distance - 1 */
|
| 1096 |
code = d_code(dist);
|
| 1097 |
Assert (code < D_CODES, "bad d_code");
|
| 1098 |
|
| 1099 |
send_code(s, code, dtree); /* send the distance code */
|
| 1100 |
extra = extra_dbits[code];
|
| 1101 |
if (extra != 0) {
|
| 1102 |
dist -= base_dist[code];
|
| 1103 |
send_bits(s, dist, extra); /* send the extra distance bits */
|
| 1104 |
}
|
| 1105 |
} /* literal or match pair ? */
|
| 1106 |
|
| 1107 |
/* Check that the overlay between pending_buf and d_buf+l_buf is ok: */
|
| 1108 |
Assert(s->pending < s->lit_bufsize + 2*lx, "pendingBuf overflow");
|
| 1109 |
|
| 1110 |
} while (lx < s->last_lit);
|
| 1111 |
|
| 1112 |
send_code(s, END_BLOCK, ltree);
|
| 1113 |
s->last_eob_len = ltree[END_BLOCK].Len;
|
| 1114 |
}
|
| 1115 |
|
| 1116 |
/* ===========================================================================
|
| 1117 |
* Set the data type to ASCII or BINARY, using a crude approximation:
|
| 1118 |
* binary if more than 20% of the bytes are <= 6 or >= 128, ascii otherwise.
|
| 1119 |
* IN assertion: the fields freq of dyn_ltree are set and the total of all
|
| 1120 |
* frequencies does not exceed 64K (to fit in an int on 16 bit machines).
|
| 1121 |
*/
|
| 1122 |
local void set_data_type(s)
|
| 1123 |
deflate_state *s;
|
| 1124 |
{
|
| 1125 |
int n = 0;
|
| 1126 |
unsigned ascii_freq = 0;
|
| 1127 |
unsigned bin_freq = 0;
|
| 1128 |
while (n < 7) bin_freq += s->dyn_ltree[n++].Freq;
|
| 1129 |
while (n < 128) ascii_freq += s->dyn_ltree[n++].Freq;
|
| 1130 |
while (n < LITERALS) bin_freq += s->dyn_ltree[n++].Freq;
|
| 1131 |
s->data_type = (Byte)(bin_freq > (ascii_freq >> 2) ? Z_BINARY : Z_ASCII);
|
| 1132 |
}
|
| 1133 |
|
| 1134 |
/* ===========================================================================
|
| 1135 |
* Reverse the first len bits of a code, using straightforward code (a faster
|
| 1136 |
* method would use a table)
|
| 1137 |
* IN assertion: 1 <= len <= 15
|
| 1138 |
*/
|
| 1139 |
local unsigned bi_reverse(code, len)
|
| 1140 |
unsigned code; /* the value to invert */
|
| 1141 |
int len; /* its bit length */
|
| 1142 |
{
|
| 1143 |
register unsigned res = 0;
|
| 1144 |
do {
|
| 1145 |
res |= code & 1;
|
| 1146 |
code >>= 1, res <<= 1;
|
| 1147 |
} while (--len > 0);
|
| 1148 |
return res >> 1;
|
| 1149 |
}
|
| 1150 |
|
| 1151 |
/* ===========================================================================
|
| 1152 |
* Flush the bit buffer, keeping at most 7 bits in it.
|
| 1153 |
*/
|
| 1154 |
local void bi_flush(s)
|
| 1155 |
deflate_state *s;
|
| 1156 |
{
|
| 1157 |
if (s->bi_valid == 16) {
|
| 1158 |
put_short(s, s->bi_buf);
|
| 1159 |
s->bi_buf = 0;
|
| 1160 |
s->bi_valid = 0;
|
| 1161 |
} else if (s->bi_valid >= 8) {
|
| 1162 |
put_byte(s, (Byte)s->bi_buf);
|
| 1163 |
s->bi_buf >>= 8;
|
| 1164 |
s->bi_valid -= 8;
|
| 1165 |
}
|
| 1166 |
}
|
| 1167 |
|
| 1168 |
/* ===========================================================================
|
| 1169 |
* Flush the bit buffer and align the output on a byte boundary
|
| 1170 |
*/
|
| 1171 |
local void bi_windup(s)
|
| 1172 |
deflate_state *s;
|
| 1173 |
{
|
| 1174 |
if (s->bi_valid > 8) {
|
| 1175 |
put_short(s, s->bi_buf);
|
| 1176 |
} else if (s->bi_valid > 0) {
|
| 1177 |
put_byte(s, (Byte)s->bi_buf);
|
| 1178 |
}
|
| 1179 |
s->bi_buf = 0;
|
| 1180 |
s->bi_valid = 0;
|
| 1181 |
#ifdef DEBUG
|
| 1182 |
s->bits_sent = (s->bits_sent+7) & ~7;
|
| 1183 |
#endif
|
| 1184 |
}
|
| 1185 |
|
| 1186 |
/* ===========================================================================
|
| 1187 |
* Copy a stored block, storing first the length and its
|
| 1188 |
* one's complement if requested.
|
| 1189 |
*/
|
| 1190 |
local void copy_block(s, buf, len, header)
|
| 1191 |
deflate_state *s;
|
| 1192 |
charf *buf; /* the input data */
|
| 1193 |
unsigned len; /* its length */
|
| 1194 |
int header; /* true if block header must be written */
|
| 1195 |
{
|
| 1196 |
bi_windup(s); /* align on byte boundary */
|
| 1197 |
s->last_eob_len = 8; /* enough lookahead for inflate */
|
| 1198 |
|
| 1199 |
if (header) {
|
| 1200 |
put_short(s, (ush)len);
|
| 1201 |
put_short(s, (ush)~len);
|
| 1202 |
#ifdef DEBUG
|
| 1203 |
s->bits_sent += 2*16;
|
| 1204 |
#endif
|
| 1205 |
}
|
| 1206 |
#ifdef DEBUG
|
| 1207 |
s->bits_sent += (ulg)len<<3;
|
| 1208 |
#endif
|
| 1209 |
while (len--) {
|
| 1210 |
put_byte(s, *buf++);
|
| 1211 |
}
|
| 1212 |
}
|