Line | Count | Source |
1 | | /* inftrees.c -- generate Huffman trees for efficient decoding |
2 | | * Copyright (C) 1995-2025 Mark Adler |
3 | | * For conditions of distribution and use, see copyright notice in zlib.h |
4 | | */ |
5 | | |
6 | | #ifdef MAKEFIXED |
7 | | # ifndef BUILDFIXED |
8 | | # define BUILDFIXED |
9 | | # endif |
10 | | #endif |
11 | | #ifdef BUILDFIXED |
12 | | # define Z_ONCE |
13 | | #endif |
14 | | |
15 | | #include "zutil.h" |
16 | | #include "inftrees.h" |
17 | | #include "inflate.h" |
18 | | |
19 | 443k | #define MAXBITS 15 |
20 | | |
21 | | const char inflate_copyright[] = |
22 | | " inflate 1.3.1.2 Copyright 1995-2025 Mark Adler "; |
23 | | /* |
24 | | If you use the zlib library in a product, an acknowledgment is welcome |
25 | | in the documentation of your product. If for some reason you cannot |
26 | | include such an acknowledgment, I would appreciate that you keep this |
27 | | copyright string in the executable of your product. |
28 | | */ |
29 | | |
30 | | /* |
31 | | Build a set of tables to decode the provided canonical Huffman code. |
32 | | The code lengths are lens[0..codes-1]. The result starts at *table, |
33 | | whose indices are 0..2^bits-1. work is a writable array of at least |
34 | | lens shorts, which is used as a work area. type is the type of code |
35 | | to be generated, CODES, LENS, or DISTS. On return, zero is success, |
36 | | -1 is an invalid code, and +1 means that ENOUGH isn't enough. table |
37 | | on return points to the next available entry's address. bits is the |
38 | | requested root table index bits, and on return it is the actual root |
39 | | table index bits. It will differ if the request is greater than the |
40 | | longest code or if it is less than the shortest code. |
41 | | */ |
42 | | int ZLIB_INTERNAL inflate_table(codetype type, unsigned short FAR *lens, |
43 | | unsigned codes, code FAR * FAR *table, |
44 | 9.16k | unsigned FAR *bits, unsigned short FAR *work) { |
45 | 9.16k | unsigned len; /* a code's length in bits */ |
46 | 9.16k | unsigned sym; /* index of code symbols */ |
47 | 9.16k | unsigned min, max; /* minimum and maximum code lengths */ |
48 | 9.16k | unsigned root; /* number of index bits for root table */ |
49 | 9.16k | unsigned curr; /* number of index bits for current table */ |
50 | 9.16k | unsigned drop; /* code bits to drop for sub-table */ |
51 | 9.16k | int left; /* number of prefix codes available */ |
52 | 9.16k | unsigned used; /* code entries in table used */ |
53 | 9.16k | unsigned huff; /* Huffman code */ |
54 | 9.16k | unsigned incr; /* for incrementing code, index */ |
55 | 9.16k | unsigned fill; /* index for replicating entries */ |
56 | 9.16k | unsigned low; /* low bits for current root entry */ |
57 | 9.16k | unsigned mask; /* mask for low root bits */ |
58 | 9.16k | code here; /* table entry for duplication */ |
59 | 9.16k | code FAR *next; /* next available space in table */ |
60 | 9.16k | const unsigned short FAR *base; /* base value table to use */ |
61 | 9.16k | const unsigned short FAR *extra; /* extra bits table to use */ |
62 | 9.16k | unsigned match; /* use base and extra for symbol >= match */ |
63 | 9.16k | unsigned short count[MAXBITS+1]; /* number of codes of each length */ |
64 | 9.16k | unsigned short offs[MAXBITS+1]; /* offsets in table for each length */ |
65 | 9.16k | static const unsigned short lbase[31] = { /* Length codes 257..285 base */ |
66 | 9.16k | 3, 4, 5, 6, 7, 8, 9, 10, 11, 13, 15, 17, 19, 23, 27, 31, |
67 | 9.16k | 35, 43, 51, 59, 67, 83, 99, 115, 131, 163, 195, 227, 258, 0, 0}; |
68 | 9.16k | static const unsigned short lext[31] = { /* Length codes 257..285 extra */ |
69 | 9.16k | 16, 16, 16, 16, 16, 16, 16, 16, 17, 17, 17, 17, 18, 18, 18, 18, |
70 | 9.16k | 19, 19, 19, 19, 20, 20, 20, 20, 21, 21, 21, 21, 16, 64, 204}; |
71 | 9.16k | static const unsigned short dbase[32] = { /* Distance codes 0..29 base */ |
72 | 9.16k | 1, 2, 3, 4, 5, 7, 9, 13, 17, 25, 33, 49, 65, 97, 129, 193, |
73 | 9.16k | 257, 385, 513, 769, 1025, 1537, 2049, 3073, 4097, 6145, |
74 | 9.16k | 8193, 12289, 16385, 24577, 0, 0}; |
75 | 9.16k | static const unsigned short dext[32] = { /* Distance codes 0..29 extra */ |
76 | 9.16k | 16, 16, 16, 16, 17, 17, 18, 18, 19, 19, 20, 20, 21, 21, 22, 22, |
77 | 9.16k | 23, 23, 24, 24, 25, 25, 26, 26, 27, 27, |
78 | 9.16k | 28, 28, 29, 29, 64, 64}; |
79 | | |
80 | | /* |
81 | | Process a set of code lengths to create a canonical Huffman code. The |
82 | | code lengths are lens[0..codes-1]. Each length corresponds to the |
83 | | symbols 0..codes-1. The Huffman code is generated by first sorting the |
84 | | symbols by length from short to long, and retaining the symbol order |
85 | | for codes with equal lengths. Then the code starts with all zero bits |
86 | | for the first code of the shortest length, and the codes are integer |
87 | | increments for the same length, and zeros are appended as the length |
88 | | increases. For the deflate format, these bits are stored backwards |
89 | | from their more natural integer increment ordering, and so when the |
90 | | decoding tables are built in the large loop below, the integer codes |
91 | | are incremented backwards. |
92 | | |
93 | | This routine assumes, but does not check, that all of the entries in |
94 | | lens[] are in the range 0..MAXBITS. The caller must assure this. |
95 | | 1..MAXBITS is interpreted as that code length. zero means that that |
96 | | symbol does not occur in this code. |
97 | | |
98 | | The codes are sorted by computing a count of codes for each length, |
99 | | creating from that a table of starting indices for each length in the |
100 | | sorted table, and then entering the symbols in order in the sorted |
101 | | table. The sorted table is work[], with that space being provided by |
102 | | the caller. |
103 | | |
104 | | The length counts are used for other purposes as well, i.e. finding |
105 | | the minimum and maximum length codes, determining if there are any |
106 | | codes at all, checking for a valid set of lengths, and looking ahead |
107 | | at length counts to determine sub-table sizes when building the |
108 | | decoding tables. |
109 | | */ |
110 | | |
111 | | /* accumulate lengths for codes (assumes lens[] all in 0..MAXBITS) */ |
112 | 155k | for (len = 0; len <= MAXBITS; len++) |
113 | 146k | count[len] = 0; |
114 | 969k | for (sym = 0; sym < codes; sym++) |
115 | 960k | count[lens[sym]]++; |
116 | | |
117 | | /* bound code lengths, force root to be within code lengths */ |
118 | 9.16k | root = *bits; |
119 | 92.6k | for (max = MAXBITS; max >= 1; max--) |
120 | 92.5k | if (count[max] != 0) break; |
121 | 9.16k | if (root > max) root = max; |
122 | 9.16k | if (max == 0) { /* no symbols to code at all */ |
123 | 21 | here.op = (unsigned char)64; /* invalid code marker */ |
124 | 21 | here.bits = (unsigned char)1; |
125 | 21 | here.val = (unsigned short)0; |
126 | 21 | *(*table)++ = here; /* make a table to force an error */ |
127 | 21 | *(*table)++ = here; |
128 | 21 | *bits = 1; |
129 | 21 | return 0; /* no symbols, but wait for decoding to report error */ |
130 | 21 | } |
131 | 17.5k | for (min = 1; min < max; min++) |
132 | 16.5k | if (count[min] != 0) break; |
133 | 9.14k | if (root < min) root = min; |
134 | | |
135 | | /* check for an over-subscribed or incomplete set of lengths */ |
136 | 9.14k | left = 1; |
137 | 145k | for (len = 1; len <= MAXBITS; len++) { |
138 | 135k | left <<= 1; |
139 | 135k | left -= count[len]; |
140 | 135k | if (left < 0) return -1; /* over-subscribed */ |
141 | 135k | } |
142 | 9.03k | if (left > 0 && (type == CODES || max != 1)) |
143 | 116 | return -1; /* incomplete set */ |
144 | | |
145 | | /* generate offsets into symbol table for each length for sorting */ |
146 | 8.91k | offs[1] = 0; |
147 | 133k | for (len = 1; len < MAXBITS; len++) |
148 | 124k | offs[len + 1] = offs[len] + count[len]; |
149 | | |
150 | | /* sort symbols by length, by symbol order within each length */ |
151 | 950k | for (sym = 0; sym < codes; sym++) |
152 | 941k | if (lens[sym] != 0) work[offs[lens[sym]]++] = (unsigned short)sym; |
153 | | |
154 | | /* |
155 | | Create and fill in decoding tables. In this loop, the table being |
156 | | filled is at next and has curr index bits. The code being used is huff |
157 | | with length len. That code is converted to an index by dropping drop |
158 | | bits off of the bottom. For codes where len is less than drop + curr, |
159 | | those top drop + curr - len bits are incremented through all values to |
160 | | fill the table with replicated entries. |
161 | | |
162 | | root is the number of index bits for the root table. When len exceeds |
163 | | root, sub-tables are created pointed to by the root entry with an index |
164 | | of the low root bits of huff. This is saved in low to check for when a |
165 | | new sub-table should be started. drop is zero when the root table is |
166 | | being filled, and drop is root when sub-tables are being filled. |
167 | | |
168 | | When a new sub-table is needed, it is necessary to look ahead in the |
169 | | code lengths to determine what size sub-table is needed. The length |
170 | | counts are used for this, and so count[] is decremented as codes are |
171 | | entered in the tables. |
172 | | |
173 | | used keeps track of how many table entries have been allocated from the |
174 | | provided *table space. It is checked for LENS and DIST tables against |
175 | | the constants ENOUGH_LENS and ENOUGH_DISTS to guard against changes in |
176 | | the initial root table size constants. See the comments in inftrees.h |
177 | | for more information. |
178 | | |
179 | | sym increments through all symbols, and the loop terminates when |
180 | | all codes of length max, i.e. all codes, have been processed. This |
181 | | routine permits incomplete codes, so another loop after this one fills |
182 | | in the rest of the decoding tables with invalid code markers. |
183 | | */ |
184 | | |
185 | | /* set up for code type */ |
186 | 8.91k | switch (type) { |
187 | 3.15k | case CODES: |
188 | 3.15k | base = extra = work; /* dummy value--not used */ |
189 | 3.15k | match = 20; |
190 | 3.15k | break; |
191 | 2.90k | case LENS: |
192 | 2.90k | base = lbase; |
193 | 2.90k | extra = lext; |
194 | 2.90k | match = 257; |
195 | 2.90k | break; |
196 | 2.85k | default: /* DISTS */ |
197 | 2.85k | base = dbase; |
198 | 2.85k | extra = dext; |
199 | 2.85k | match = 0; |
200 | 8.91k | } |
201 | | |
202 | | /* initialize state for loop */ |
203 | 8.91k | huff = 0; /* starting code */ |
204 | 8.91k | sym = 0; /* starting code symbol */ |
205 | 8.91k | len = min; /* starting code length */ |
206 | 8.91k | next = *table; /* current table to fill in */ |
207 | 8.91k | curr = root; /* current table index bits */ |
208 | 8.91k | drop = 0; /* current bits to drop from code for index */ |
209 | 8.91k | low = (unsigned)(-1); /* trigger new sub-table when len > root */ |
210 | 8.91k | used = 1U << root; /* use root table entries */ |
211 | 8.91k | mask = used - 1; /* mask for comparing low */ |
212 | | |
213 | | /* check available table space */ |
214 | 8.91k | if ((type == LENS && used > ENOUGH_LENS) || |
215 | 8.91k | (type == DISTS && used > ENOUGH_DISTS)) |
216 | 0 | return 1; |
217 | | |
218 | | /* process all codes and make table entries */ |
219 | 366k | for (;;) { |
220 | | /* create table entry */ |
221 | 366k | here.bits = (unsigned char)(len - drop); |
222 | 366k | if (work[sym] + 1U < match) { |
223 | 305k | here.op = (unsigned char)0; |
224 | 305k | here.val = work[sym]; |
225 | 305k | } |
226 | 61.4k | else if (work[sym] >= match) { |
227 | 58.5k | here.op = (unsigned char)(extra[work[sym] - match]); |
228 | 58.5k | here.val = base[work[sym] - match]; |
229 | 58.5k | } |
230 | 2.90k | else { |
231 | 2.90k | here.op = (unsigned char)(32 + 64); /* end of block */ |
232 | 2.90k | here.val = 0; |
233 | 2.90k | } |
234 | | |
235 | | /* replicate for those indices with low len bits equal to huff */ |
236 | 366k | incr = 1U << (len - drop); |
237 | 366k | fill = 1U << curr; |
238 | 366k | min = fill; /* save offset to next table */ |
239 | 1.23M | do { |
240 | 1.23M | fill -= incr; |
241 | 1.23M | next[(huff >> drop) + fill] = here; |
242 | 1.23M | } while (fill != 0); |
243 | | |
244 | | /* backwards increment the len-bit code huff */ |
245 | 366k | incr = 1U << (len - 1); |
246 | 724k | while (huff & incr) |
247 | 357k | incr >>= 1; |
248 | 366k | if (incr != 0) { |
249 | 357k | huff &= incr - 1; |
250 | 357k | huff += incr; |
251 | 357k | } |
252 | 8.82k | else |
253 | 8.82k | huff = 0; |
254 | | |
255 | | /* go to next symbol, update count, len */ |
256 | 366k | sym++; |
257 | 366k | if (--(count[len]) == 0) { |
258 | 41.4k | if (len == max) break; |
259 | 32.5k | len = lens[work[sym]]; |
260 | 32.5k | } |
261 | | |
262 | | /* create new sub-table if needed */ |
263 | 357k | if (len > root && (huff & mask) != low) { |
264 | | /* if first time, transition to sub-tables */ |
265 | 53.2k | if (drop == 0) |
266 | 3.01k | drop = root; |
267 | | |
268 | | /* increment past last table */ |
269 | 53.2k | next += min; /* here min is 1 << curr */ |
270 | | |
271 | | /* determine length of next table */ |
272 | 53.2k | curr = len - drop; |
273 | 53.2k | left = (int)(1 << curr); |
274 | 54.9k | while (curr + drop < max) { |
275 | 3.51k | left -= count[curr + drop]; |
276 | 3.51k | if (left <= 0) break; |
277 | 1.73k | curr++; |
278 | 1.73k | left <<= 1; |
279 | 1.73k | } |
280 | | |
281 | | /* check for enough space */ |
282 | 53.2k | used += 1U << curr; |
283 | 53.2k | if ((type == LENS && used > ENOUGH_LENS) || |
284 | 53.2k | (type == DISTS && used > ENOUGH_DISTS)) |
285 | 0 | return 1; |
286 | | |
287 | | /* point entry in root table to sub-table */ |
288 | 53.2k | low = huff & mask; |
289 | 53.2k | (*table)[low].op = (unsigned char)curr; |
290 | 53.2k | (*table)[low].bits = (unsigned char)root; |
291 | 53.2k | (*table)[low].val = (unsigned short)(next - *table); |
292 | 53.2k | } |
293 | 357k | } |
294 | | |
295 | | /* fill in remaining table entry if code is incomplete (guaranteed to have |
296 | | at most one remaining entry, since if the code is incomplete, the |
297 | | maximum code length that was allowed to get this far is one bit) */ |
298 | 8.91k | if (huff != 0) { |
299 | 90 | here.op = (unsigned char)64; /* invalid code marker */ |
300 | 90 | here.bits = (unsigned char)(len - drop); |
301 | 90 | here.val = (unsigned short)0; |
302 | 90 | next[huff] = here; |
303 | 90 | } |
304 | | |
305 | | /* set return parameters */ |
306 | 8.91k | *table += used; |
307 | 8.91k | *bits = root; |
308 | 8.91k | return 0; |
309 | 8.91k | } |
310 | | |
311 | | #ifdef BUILDFIXED |
312 | | /* |
313 | | If this is compiled with BUILDFIXED defined, and if inflate will be used in |
314 | | multiple threads, and if atomics are not available, then inflate() must be |
315 | | called with a fixed block (e.g. 0x03 0x00) to initialize the tables and must |
316 | | return before any other threads are allowed to call inflate. |
317 | | */ |
318 | | |
319 | | static code *lenfix, *distfix; |
320 | | static code fixed[544]; |
321 | | |
322 | | /* State for z_once(). */ |
323 | | local z_once_t built = Z_ONCE_INIT; |
324 | | |
325 | | local void buildtables(void) { |
326 | | unsigned sym, bits; |
327 | | static code *next; |
328 | | unsigned short lens[288], work[288]; |
329 | | |
330 | | /* literal/length table */ |
331 | | sym = 0; |
332 | | while (sym < 144) lens[sym++] = 8; |
333 | | while (sym < 256) lens[sym++] = 9; |
334 | | while (sym < 280) lens[sym++] = 7; |
335 | | while (sym < 288) lens[sym++] = 8; |
336 | | next = fixed; |
337 | | lenfix = next; |
338 | | bits = 9; |
339 | | inflate_table(LENS, lens, 288, &(next), &(bits), work); |
340 | | |
341 | | /* distance table */ |
342 | | sym = 0; |
343 | | while (sym < 32) lens[sym++] = 5; |
344 | | distfix = next; |
345 | | bits = 5; |
346 | | inflate_table(DISTS, lens, 32, &(next), &(bits), work); |
347 | | } |
348 | | #else /* !BUILDFIXED */ |
349 | | # include "inffixed.h" |
350 | | #endif /* BUILDFIXED */ |
351 | | |
352 | | /* |
353 | | Return state with length and distance decoding tables and index sizes set to |
354 | | fixed code decoding. Normally this returns fixed tables from inffixed.h. |
355 | | If BUILDFIXED is defined, then instead this routine builds the tables the |
356 | | first time it's called, and returns those tables the first time and |
357 | | thereafter. This reduces the size of the code by about 2K bytes, in |
358 | | exchange for a little execution time. However, BUILDFIXED should not be |
359 | | used for threaded applications if atomics are not available, as it will |
360 | | not be thread-safe. |
361 | | */ |
362 | 5.22k | void inflate_fixed(struct inflate_state FAR *state) { |
363 | | #ifdef BUILDFIXED |
364 | | z_once(&built, buildtables); |
365 | | #endif /* BUILDFIXED */ |
366 | 5.22k | state->lencode = lenfix; |
367 | 5.22k | state->lenbits = 9; |
368 | 5.22k | state->distcode = distfix; |
369 | 5.22k | state->distbits = 5; |
370 | 5.22k | } |
371 | | |
372 | | #ifdef MAKEFIXED |
373 | | #include <stdio.h> |
374 | | |
375 | | /* |
376 | | Write out the inffixed.h that will be #include'd above. Defining MAKEFIXED |
377 | | also defines BUILDFIXED, so the tables are built on the fly. main() writes |
378 | | those tables to stdout, which would directed to inffixed.h. Compile this |
379 | | along with zutil.c: |
380 | | |
381 | | cc -DMAKEFIXED -o fix inftrees.c zutil.c |
382 | | ./fix > inffixed.h |
383 | | */ |
384 | | int main(void) { |
385 | | unsigned low, size; |
386 | | struct inflate_state state; |
387 | | |
388 | | inflate_fixed(&state); |
389 | | puts("/* inffixed.h -- table for decoding fixed codes"); |
390 | | puts(" * Generated automatically by makefixed()."); |
391 | | puts(" */"); |
392 | | puts(""); |
393 | | puts("/* WARNING: this file should *not* be used by applications."); |
394 | | puts(" It is part of the implementation of this library and is"); |
395 | | puts(" subject to change. Applications should only use zlib.h."); |
396 | | puts(" */"); |
397 | | puts(""); |
398 | | size = 1U << 9; |
399 | | printf("static const code lenfix[%u] = {", size); |
400 | | low = 0; |
401 | | for (;;) { |
402 | | if ((low % 7) == 0) printf("\n "); |
403 | | printf("{%u,%u,%d}", (low & 127) == 99 ? 64 : state.lencode[low].op, |
404 | | state.lencode[low].bits, state.lencode[low].val); |
405 | | if (++low == size) break; |
406 | | putchar(','); |
407 | | } |
408 | | puts("\n};"); |
409 | | size = 1U << 5; |
410 | | printf("\nstatic const code distfix[%u] = {", size); |
411 | | low = 0; |
412 | | for (;;) { |
413 | | if ((low % 6) == 0) printf("\n "); |
414 | | printf("{%u,%u,%d}", state.distcode[low].op, state.distcode[low].bits, |
415 | | state.distcode[low].val); |
416 | | if (++low == size) break; |
417 | | putchar(','); |
418 | | } |
419 | | puts("\n};"); |
420 | | return 0; |
421 | | } |
422 | | #endif /* MAKEFIXED */ |