crc32.c revision 1.4 1 1.1 christos /* crc32.c -- compute the CRC-32 of a data stream
2 1.3 christos * Copyright (C) 1995-2022 Mark Adler
3 1.1 christos * For conditions of distribution and use, see copyright notice in zlib.h
4 1.1 christos *
5 1.3 christos * This interleaved implementation of a CRC makes use of pipelined multiple
6 1.3 christos * arithmetic-logic units, commonly found in modern CPU cores. It is due to
7 1.3 christos * Kadatch and Jenkins (2010). See doc/crc-doc.1.0.pdf in this distribution.
8 1.1 christos */
9 1.1 christos
10 1.3 christos /* @(#) Id */
11 1.1 christos
12 1.1 christos /*
13 1.1 christos Note on the use of DYNAMIC_CRC_TABLE: there is no mutex or semaphore
14 1.1 christos protection on the static variables used to control the first-use generation
15 1.3 christos of the crc tables. Therefore, if you #define DYNAMIC_CRC_TABLE, you should
16 1.1 christos first call get_crc_table() to initialize the tables before allowing more than
17 1.1 christos one thread to use crc32().
18 1.1 christos
19 1.3 christos MAKECRCH can be #defined to write out crc32.h. A main() routine is also
20 1.3 christos produced, so that this one source file can be compiled to an executable.
21 1.1 christos */
22 1.1 christos
23 1.1 christos #ifdef MAKECRCH
24 1.1 christos # include <stdio.h>
25 1.1 christos # ifndef DYNAMIC_CRC_TABLE
26 1.1 christos # define DYNAMIC_CRC_TABLE
27 1.1 christos # endif /* !DYNAMIC_CRC_TABLE */
28 1.1 christos #endif /* MAKECRCH */
29 1.1 christos
30 1.3 christos #include "zutil.h" /* for Z_U4, Z_U8, z_crc_t, and FAR definitions */
31 1.1 christos
32 1.3 christos /*
33 1.3 christos A CRC of a message is computed on N braids of words in the message, where
34 1.3 christos each word consists of W bytes (4 or 8). If N is 3, for example, then three
35 1.3 christos running sparse CRCs are calculated respectively on each braid, at these
36 1.3 christos indices in the array of words: 0, 3, 6, ..., 1, 4, 7, ..., and 2, 5, 8, ...
37 1.3 christos This is done starting at a word boundary, and continues until as many blocks
38 1.3 christos of N * W bytes as are available have been processed. The results are combined
39 1.3 christos into a single CRC at the end. For this code, N must be in the range 1..6 and
40 1.3 christos W must be 4 or 8. The upper limit on N can be increased if desired by adding
41 1.3 christos more #if blocks, extending the patterns apparent in the code. In addition,
42 1.3 christos crc32.h would need to be regenerated, if the maximum N value is increased.
43 1.3 christos
44 1.3 christos N and W are chosen empirically by benchmarking the execution time on a given
45 1.3 christos processor. The choices for N and W below were based on testing on Intel Kaby
46 1.3 christos Lake i7, AMD Ryzen 7, ARM Cortex-A57, Sparc64-VII, PowerPC POWER9, and MIPS64
47 1.3 christos Octeon II processors. The Intel, AMD, and ARM processors were all fastest
48 1.3 christos with N=5, W=8. The Sparc, PowerPC, and MIPS64 were all fastest at N=5, W=4.
49 1.3 christos They were all tested with either gcc or clang, all using the -O3 optimization
50 1.3 christos level. Your mileage may vary.
51 1.3 christos */
52 1.3 christos
53 1.3 christos /* Define N */
54 1.3 christos #ifdef Z_TESTN
55 1.3 christos # define N Z_TESTN
56 1.1 christos #else
57 1.3 christos # define N 5
58 1.3 christos #endif
59 1.3 christos #if N < 1 || N > 6
60 1.3 christos # error N must be in 1..6
61 1.3 christos #endif
62 1.1 christos
63 1.3 christos /*
64 1.3 christos z_crc_t must be at least 32 bits. z_word_t must be at least as long as
65 1.3 christos z_crc_t. It is assumed here that z_word_t is either 32 bits or 64 bits, and
66 1.3 christos that bytes are eight bits.
67 1.3 christos */
68 1.3 christos
69 1.3 christos /*
70 1.3 christos Define W and the associated z_word_t type. If W is not defined, then a
71 1.3 christos braided calculation is not used, and the associated tables and code are not
72 1.3 christos compiled.
73 1.3 christos */
74 1.3 christos #ifdef Z_TESTW
75 1.3 christos # if Z_TESTW-1 != -1
76 1.3 christos # define W Z_TESTW
77 1.3 christos # endif
78 1.3 christos #else
79 1.3 christos # ifdef MAKECRCH
80 1.3 christos # define W 8 /* required for MAKECRCH */
81 1.3 christos # else
82 1.3 christos # if defined(__x86_64__) || defined(__aarch64__)
83 1.3 christos # define W 8
84 1.3 christos # else
85 1.3 christos # define W 4
86 1.3 christos # endif
87 1.3 christos # endif
88 1.3 christos #endif
89 1.3 christos #ifdef W
90 1.3 christos # if W == 8 && defined(Z_U8)
91 1.3 christos typedef Z_U8 z_word_t;
92 1.3 christos # elif defined(Z_U4)
93 1.3 christos # undef W
94 1.3 christos # define W 4
95 1.3 christos typedef Z_U4 z_word_t;
96 1.3 christos # else
97 1.3 christos # undef W
98 1.3 christos # endif
99 1.3 christos #endif
100 1.1 christos
101 1.3 christos /* If available, use the ARM processor CRC32 instruction. */
102 1.3 christos #if defined(__aarch64__) && defined(__ARM_FEATURE_CRC32) && W == 8
103 1.3 christos # define ARMCRC32
104 1.3 christos #endif
105 1.3 christos
106 1.3 christos #if defined(W) && (!defined(ARMCRC32) || defined(DYNAMIC_CRC_TABLE))
107 1.3 christos /*
108 1.3 christos Swap the bytes in a z_word_t to convert between little and big endian. Any
109 1.3 christos self-respecting compiler will optimize this to a single machine byte-swap
110 1.3 christos instruction, if one is available. This assumes that word_t is either 32 bits
111 1.3 christos or 64 bits.
112 1.3 christos */
113 1.4 christos local z_word_t byte_swap(z_word_t word) {
114 1.3 christos # if W == 8
115 1.3 christos return
116 1.3 christos (word & 0xff00000000000000) >> 56 |
117 1.3 christos (word & 0xff000000000000) >> 40 |
118 1.3 christos (word & 0xff0000000000) >> 24 |
119 1.3 christos (word & 0xff00000000) >> 8 |
120 1.3 christos (word & 0xff000000) << 8 |
121 1.3 christos (word & 0xff0000) << 24 |
122 1.3 christos (word & 0xff00) << 40 |
123 1.3 christos (word & 0xff) << 56;
124 1.3 christos # else /* W == 4 */
125 1.3 christos return
126 1.3 christos (word & 0xff000000) >> 24 |
127 1.3 christos (word & 0xff0000) >> 8 |
128 1.3 christos (word & 0xff00) << 8 |
129 1.3 christos (word & 0xff) << 24;
130 1.3 christos # endif
131 1.3 christos }
132 1.3 christos #endif
133 1.3 christos
134 1.4 christos #ifdef DYNAMIC_CRC_TABLE
135 1.4 christos /* =========================================================================
136 1.4 christos * Table of powers of x for combining CRC-32s, filled in by make_crc_table()
137 1.4 christos * below.
138 1.4 christos */
139 1.4 christos local z_crc_t FAR x2n_table[32];
140 1.4 christos #else
141 1.4 christos /* =========================================================================
142 1.4 christos * Tables for byte-wise and braided CRC-32 calculations, and a table of powers
143 1.4 christos * of x for combining CRC-32s, all made by make_crc_table().
144 1.4 christos */
145 1.4 christos # include "crc32.h"
146 1.4 christos #endif
147 1.4 christos
148 1.3 christos /* CRC polynomial. */
149 1.3 christos #define POLY 0xedb88320 /* p(x) reflected, with x^32 implied */
150 1.1 christos
151 1.4 christos /*
152 1.4 christos Return a(x) multiplied by b(x) modulo p(x), where p(x) is the CRC polynomial,
153 1.4 christos reflected. For speed, this requires that a not be zero.
154 1.4 christos */
155 1.4 christos local z_crc_t multmodp(z_crc_t a, z_crc_t b) {
156 1.4 christos z_crc_t m, p;
157 1.4 christos
158 1.4 christos m = (z_crc_t)1 << 31;
159 1.4 christos p = 0;
160 1.4 christos for (;;) {
161 1.4 christos if (a & m) {
162 1.4 christos p ^= b;
163 1.4 christos if ((a & (m - 1)) == 0)
164 1.4 christos break;
165 1.4 christos }
166 1.4 christos m >>= 1;
167 1.4 christos b = b & 1 ? (b >> 1) ^ POLY : b >> 1;
168 1.4 christos }
169 1.4 christos return p;
170 1.4 christos }
171 1.4 christos
172 1.4 christos /*
173 1.4 christos Return x^(n * 2^k) modulo p(x). Requires that x2n_table[] has been
174 1.4 christos initialized.
175 1.4 christos */
176 1.4 christos local z_crc_t x2nmodp(z_off64_t n, unsigned k) {
177 1.4 christos z_crc_t p;
178 1.4 christos
179 1.4 christos p = (z_crc_t)1 << 31; /* x^0 == 1 */
180 1.4 christos while (n) {
181 1.4 christos if (n & 1)
182 1.4 christos p = multmodp(x2n_table[k & 31], p);
183 1.4 christos n >>= 1;
184 1.4 christos k++;
185 1.4 christos }
186 1.4 christos return p;
187 1.4 christos }
188 1.4 christos
189 1.1 christos #ifdef DYNAMIC_CRC_TABLE
190 1.4 christos /* =========================================================================
191 1.4 christos * Build the tables for byte-wise and braided CRC-32 calculations, and a table
192 1.4 christos * of powers of x for combining CRC-32s.
193 1.4 christos */
194 1.3 christos local z_crc_t FAR crc_table[256];
195 1.3 christos #ifdef W
196 1.3 christos local z_word_t FAR crc_big_table[256];
197 1.3 christos local z_crc_t FAR crc_braid_table[W][256];
198 1.3 christos local z_word_t FAR crc_braid_big_table[W][256];
199 1.4 christos local void braid(z_crc_t [][256], z_word_t [][256], int, int);
200 1.3 christos #endif
201 1.1 christos #ifdef MAKECRCH
202 1.4 christos local void write_table(FILE *, const z_crc_t FAR *, int);
203 1.4 christos local void write_table32hi(FILE *, const z_word_t FAR *, int);
204 1.4 christos local void write_table64(FILE *, const z_word_t FAR *, int);
205 1.1 christos #endif /* MAKECRCH */
206 1.3 christos
207 1.3 christos /*
208 1.3 christos Define a once() function depending on the availability of atomics. If this is
209 1.3 christos compiled with DYNAMIC_CRC_TABLE defined, and if CRCs will be computed in
210 1.3 christos multiple threads, and if atomics are not available, then get_crc_table() must
211 1.3 christos be called to initialize the tables and must return before any threads are
212 1.3 christos allowed to compute or combine CRCs.
213 1.3 christos */
214 1.3 christos
215 1.3 christos /* Definition of once functionality. */
216 1.3 christos typedef struct once_s once_t;
217 1.3 christos
218 1.3 christos /* Check for the availability of atomics. */
219 1.3 christos #if defined(__STDC__) && __STDC_VERSION__ >= 201112L && \
220 1.3 christos !defined(__STDC_NO_ATOMICS__)
221 1.3 christos
222 1.3 christos #include <stdatomic.h>
223 1.3 christos
224 1.3 christos /* Structure for once(), which must be initialized with ONCE_INIT. */
225 1.3 christos struct once_s {
226 1.3 christos atomic_flag begun;
227 1.3 christos atomic_int done;
228 1.3 christos };
229 1.3 christos #define ONCE_INIT {ATOMIC_FLAG_INIT, 0}
230 1.3 christos
231 1.3 christos /*
232 1.3 christos Run the provided init() function exactly once, even if multiple threads
233 1.3 christos invoke once() at the same time. The state must be a once_t initialized with
234 1.3 christos ONCE_INIT.
235 1.3 christos */
236 1.4 christos local void once(once_t *state, void (*init)(void)) {
237 1.3 christos if (!atomic_load(&state->done)) {
238 1.3 christos if (atomic_flag_test_and_set(&state->begun))
239 1.3 christos while (!atomic_load(&state->done))
240 1.3 christos ;
241 1.3 christos else {
242 1.3 christos init();
243 1.3 christos atomic_store(&state->done, 1);
244 1.3 christos }
245 1.3 christos }
246 1.3 christos }
247 1.3 christos
248 1.3 christos #else /* no atomics */
249 1.3 christos
250 1.3 christos /* Structure for once(), which must be initialized with ONCE_INIT. */
251 1.3 christos struct once_s {
252 1.3 christos volatile int begun;
253 1.3 christos volatile int done;
254 1.3 christos };
255 1.3 christos #define ONCE_INIT {0, 0}
256 1.3 christos
257 1.3 christos /* Test and set. Alas, not atomic, but tries to minimize the period of
258 1.3 christos vulnerability. */
259 1.4 christos local int test_and_set(int volatile *flag) {
260 1.3 christos int was;
261 1.3 christos
262 1.3 christos was = *flag;
263 1.3 christos *flag = 1;
264 1.3 christos return was;
265 1.3 christos }
266 1.3 christos
267 1.3 christos /* Run the provided init() function once. This is not thread-safe. */
268 1.4 christos local void once(once_t *state, void (*init)(void)) {
269 1.3 christos if (!state->done) {
270 1.3 christos if (test_and_set(&state->begun))
271 1.3 christos while (!state->done)
272 1.3 christos ;
273 1.3 christos else {
274 1.3 christos init();
275 1.3 christos state->done = 1;
276 1.3 christos }
277 1.3 christos }
278 1.3 christos }
279 1.3 christos
280 1.3 christos #endif
281 1.3 christos
282 1.3 christos /* State for once(). */
283 1.3 christos local once_t made = ONCE_INIT;
284 1.3 christos
285 1.1 christos /*
286 1.1 christos Generate tables for a byte-wise 32-bit CRC calculation on the polynomial:
287 1.1 christos x^32+x^26+x^23+x^22+x^16+x^12+x^11+x^10+x^8+x^7+x^5+x^4+x^2+x+1.
288 1.1 christos
289 1.1 christos Polynomials over GF(2) are represented in binary, one bit per coefficient,
290 1.3 christos with the lowest powers in the most significant bit. Then adding polynomials
291 1.1 christos is just exclusive-or, and multiplying a polynomial by x is a right shift by
292 1.3 christos one. If we call the above polynomial p, and represent a byte as the
293 1.1 christos polynomial q, also with the lowest power in the most significant bit (so the
294 1.3 christos byte 0xb1 is the polynomial x^7+x^3+x^2+1), then the CRC is (q*x^32) mod p,
295 1.1 christos where a mod b means the remainder after dividing a by b.
296 1.1 christos
297 1.1 christos This calculation is done using the shift-register method of multiplying and
298 1.3 christos taking the remainder. The register is initialized to zero, and for each
299 1.1 christos incoming bit, x^32 is added mod p to the register if the bit is a one (where
300 1.3 christos x^32 mod p is p+x^32 = x^26+...+1), and the register is multiplied mod p by x
301 1.3 christos (which is shifting right by one and adding x^32 mod p if the bit shifted out
302 1.3 christos is a one). We start with the highest power (least significant bit) of q and
303 1.3 christos repeat for all eight bits of q.
304 1.3 christos
305 1.3 christos The table is simply the CRC of all possible eight bit values. This is all the
306 1.3 christos information needed to generate CRCs on data a byte at a time for all
307 1.3 christos combinations of CRC register values and incoming bytes.
308 1.3 christos */
309 1.3 christos
310 1.4 christos local void make_crc_table(void) {
311 1.3 christos unsigned i, j, n;
312 1.3 christos z_crc_t p;
313 1.1 christos
314 1.3 christos /* initialize the CRC of bytes tables */
315 1.3 christos for (i = 0; i < 256; i++) {
316 1.3 christos p = i;
317 1.3 christos for (j = 0; j < 8; j++)
318 1.3 christos p = p & 1 ? (p >> 1) ^ POLY : p >> 1;
319 1.3 christos crc_table[i] = p;
320 1.3 christos #ifdef W
321 1.3 christos crc_big_table[i] = byte_swap(p);
322 1.3 christos #endif
323 1.3 christos }
324 1.1 christos
325 1.3 christos /* initialize the x^2^n mod p(x) table */
326 1.3 christos p = (z_crc_t)1 << 30; /* x^1 */
327 1.3 christos x2n_table[0] = p;
328 1.3 christos for (n = 1; n < 32; n++)
329 1.3 christos x2n_table[n] = p = multmodp(p, p);
330 1.3 christos
331 1.3 christos #ifdef W
332 1.3 christos /* initialize the braiding tables -- needs x2n_table[] */
333 1.3 christos braid(crc_braid_table, crc_braid_big_table, N, W);
334 1.3 christos #endif
335 1.1 christos
336 1.1 christos #ifdef MAKECRCH
337 1.1 christos {
338 1.3 christos /*
339 1.3 christos The crc32.h header file contains tables for both 32-bit and 64-bit
340 1.3 christos z_word_t's, and so requires a 64-bit type be available. In that case,
341 1.3 christos z_word_t must be defined to be 64-bits. This code then also generates
342 1.3 christos and writes out the tables for the case that z_word_t is 32 bits.
343 1.3 christos */
344 1.3 christos #if !defined(W) || W != 8
345 1.3 christos # error Need a 64-bit integer type in order to generate crc32.h.
346 1.3 christos #endif
347 1.1 christos FILE *out;
348 1.3 christos int k, n;
349 1.3 christos z_crc_t ltl[8][256];
350 1.3 christos z_word_t big[8][256];
351 1.1 christos
352 1.1 christos out = fopen("crc32.h", "w");
353 1.1 christos if (out == NULL) return;
354 1.3 christos
355 1.3 christos /* write out little-endian CRC table to crc32.h */
356 1.3 christos fprintf(out,
357 1.3 christos "/* crc32.h -- tables for rapid CRC calculation\n"
358 1.3 christos " * Generated automatically by crc32.c\n */\n"
359 1.3 christos "\n"
360 1.3 christos "local const z_crc_t FAR crc_table[] = {\n"
361 1.3 christos " ");
362 1.3 christos write_table(out, crc_table, 256);
363 1.3 christos fprintf(out,
364 1.3 christos "};\n");
365 1.3 christos
366 1.3 christos /* write out big-endian CRC table for 64-bit z_word_t to crc32.h */
367 1.3 christos fprintf(out,
368 1.3 christos "\n"
369 1.3 christos "#ifdef W\n"
370 1.3 christos "\n"
371 1.3 christos "#if W == 8\n"
372 1.3 christos "\n"
373 1.3 christos "local const z_word_t FAR crc_big_table[] = {\n"
374 1.3 christos " ");
375 1.3 christos write_table64(out, crc_big_table, 256);
376 1.3 christos fprintf(out,
377 1.3 christos "};\n");
378 1.3 christos
379 1.3 christos /* write out big-endian CRC table for 32-bit z_word_t to crc32.h */
380 1.3 christos fprintf(out,
381 1.3 christos "\n"
382 1.3 christos "#else /* W == 4 */\n"
383 1.3 christos "\n"
384 1.3 christos "local const z_word_t FAR crc_big_table[] = {\n"
385 1.3 christos " ");
386 1.3 christos write_table32hi(out, crc_big_table, 256);
387 1.3 christos fprintf(out,
388 1.3 christos "};\n"
389 1.3 christos "\n"
390 1.3 christos "#endif\n");
391 1.3 christos
392 1.3 christos /* write out braid tables for each value of N */
393 1.3 christos for (n = 1; n <= 6; n++) {
394 1.3 christos fprintf(out,
395 1.3 christos "\n"
396 1.3 christos "#if N == %d\n", n);
397 1.3 christos
398 1.3 christos /* compute braid tables for this N and 64-bit word_t */
399 1.3 christos braid(ltl, big, n, 8);
400 1.3 christos
401 1.3 christos /* write out braid tables for 64-bit z_word_t to crc32.h */
402 1.3 christos fprintf(out,
403 1.3 christos "\n"
404 1.3 christos "#if W == 8\n"
405 1.3 christos "\n"
406 1.3 christos "local const z_crc_t FAR crc_braid_table[][256] = {\n");
407 1.3 christos for (k = 0; k < 8; k++) {
408 1.3 christos fprintf(out, " {");
409 1.3 christos write_table(out, ltl[k], 256);
410 1.3 christos fprintf(out, "}%s", k < 7 ? ",\n" : "");
411 1.3 christos }
412 1.3 christos fprintf(out,
413 1.3 christos "};\n"
414 1.3 christos "\n"
415 1.3 christos "local const z_word_t FAR crc_braid_big_table[][256] = {\n");
416 1.3 christos for (k = 0; k < 8; k++) {
417 1.3 christos fprintf(out, " {");
418 1.3 christos write_table64(out, big[k], 256);
419 1.3 christos fprintf(out, "}%s", k < 7 ? ",\n" : "");
420 1.3 christos }
421 1.3 christos fprintf(out,
422 1.3 christos "};\n");
423 1.3 christos
424 1.3 christos /* compute braid tables for this N and 32-bit word_t */
425 1.3 christos braid(ltl, big, n, 4);
426 1.3 christos
427 1.3 christos /* write out braid tables for 32-bit z_word_t to crc32.h */
428 1.3 christos fprintf(out,
429 1.3 christos "\n"
430 1.3 christos "#else /* W == 4 */\n"
431 1.3 christos "\n"
432 1.3 christos "local const z_crc_t FAR crc_braid_table[][256] = {\n");
433 1.3 christos for (k = 0; k < 4; k++) {
434 1.3 christos fprintf(out, " {");
435 1.3 christos write_table(out, ltl[k], 256);
436 1.3 christos fprintf(out, "}%s", k < 3 ? ",\n" : "");
437 1.3 christos }
438 1.3 christos fprintf(out,
439 1.3 christos "};\n"
440 1.3 christos "\n"
441 1.3 christos "local const z_word_t FAR crc_braid_big_table[][256] = {\n");
442 1.3 christos for (k = 0; k < 4; k++) {
443 1.3 christos fprintf(out, " {");
444 1.3 christos write_table32hi(out, big[k], 256);
445 1.3 christos fprintf(out, "}%s", k < 3 ? ",\n" : "");
446 1.3 christos }
447 1.3 christos fprintf(out,
448 1.3 christos "};\n"
449 1.3 christos "\n"
450 1.3 christos "#endif\n"
451 1.3 christos "\n"
452 1.3 christos "#endif\n");
453 1.1 christos }
454 1.3 christos fprintf(out,
455 1.3 christos "\n"
456 1.3 christos "#endif\n");
457 1.3 christos
458 1.3 christos /* write out zeros operator table to crc32.h */
459 1.3 christos fprintf(out,
460 1.3 christos "\n"
461 1.3 christos "local const z_crc_t FAR x2n_table[] = {\n"
462 1.3 christos " ");
463 1.3 christos write_table(out, x2n_table, 32);
464 1.3 christos fprintf(out,
465 1.3 christos "};\n");
466 1.1 christos fclose(out);
467 1.1 christos }
468 1.1 christos #endif /* MAKECRCH */
469 1.1 christos }
470 1.1 christos
471 1.1 christos #ifdef MAKECRCH
472 1.3 christos
473 1.3 christos /*
474 1.3 christos Write the 32-bit values in table[0..k-1] to out, five per line in
475 1.3 christos hexadecimal separated by commas.
476 1.3 christos */
477 1.4 christos local void write_table(FILE *out, const z_crc_t FAR *table, int k) {
478 1.1 christos int n;
479 1.1 christos
480 1.3 christos for (n = 0; n < k; n++)
481 1.3 christos fprintf(out, "%s0x%08lx%s", n == 0 || n % 5 ? "" : " ",
482 1.1 christos (unsigned long)(table[n]),
483 1.3 christos n == k - 1 ? "" : (n % 5 == 4 ? ",\n" : ", "));
484 1.1 christos }
485 1.3 christos
486 1.3 christos /*
487 1.3 christos Write the high 32-bits of each value in table[0..k-1] to out, five per line
488 1.3 christos in hexadecimal separated by commas.
489 1.3 christos */
490 1.4 christos local void write_table32hi(FILE *out, const z_word_t FAR *table, int k) {
491 1.3 christos int n;
492 1.3 christos
493 1.3 christos for (n = 0; n < k; n++)
494 1.3 christos fprintf(out, "%s0x%08lx%s", n == 0 || n % 5 ? "" : " ",
495 1.3 christos (unsigned long)(table[n] >> 32),
496 1.3 christos n == k - 1 ? "" : (n % 5 == 4 ? ",\n" : ", "));
497 1.3 christos }
498 1.3 christos
499 1.3 christos /*
500 1.3 christos Write the 64-bit values in table[0..k-1] to out, three per line in
501 1.3 christos hexadecimal separated by commas. This assumes that if there is a 64-bit
502 1.3 christos type, then there is also a long long integer type, and it is at least 64
503 1.3 christos bits. If not, then the type cast and format string can be adjusted
504 1.3 christos accordingly.
505 1.3 christos */
506 1.4 christos local void write_table64(FILE *out, const z_word_t FAR *table, int k) {
507 1.3 christos int n;
508 1.3 christos
509 1.3 christos for (n = 0; n < k; n++)
510 1.3 christos fprintf(out, "%s0x%016llx%s", n == 0 || n % 3 ? "" : " ",
511 1.3 christos (unsigned long long)(table[n]),
512 1.3 christos n == k - 1 ? "" : (n % 3 == 2 ? ",\n" : ", "));
513 1.3 christos }
514 1.3 christos
515 1.3 christos /* Actually do the deed. */
516 1.4 christos int main(void) {
517 1.3 christos make_crc_table();
518 1.3 christos return 0;
519 1.3 christos }
520 1.3 christos
521 1.1 christos #endif /* MAKECRCH */
522 1.1 christos
523 1.3 christos #ifdef W
524 1.3 christos /*
525 1.3 christos Generate the little and big-endian braid tables for the given n and z_word_t
526 1.3 christos size w. Each array must have room for w blocks of 256 elements.
527 1.3 christos */
528 1.4 christos local void braid(z_crc_t ltl[][256], z_word_t big[][256], int n, int w) {
529 1.3 christos int k;
530 1.3 christos z_crc_t i, p, q;
531 1.3 christos for (k = 0; k < w; k++) {
532 1.3 christos p = x2nmodp((n * w + 3 - k) << 3, 0);
533 1.3 christos ltl[k][0] = 0;
534 1.3 christos big[w - 1 - k][0] = 0;
535 1.3 christos for (i = 1; i < 256; i++) {
536 1.3 christos ltl[k][i] = q = multmodp(i << 24, p);
537 1.3 christos big[w - 1 - k][i] = byte_swap(q);
538 1.3 christos }
539 1.3 christos }
540 1.3 christos }
541 1.3 christos #endif
542 1.3 christos
543 1.1 christos #endif /* DYNAMIC_CRC_TABLE */
544 1.1 christos
545 1.1 christos /* =========================================================================
546 1.3 christos * This function can be used by asm versions of crc32(), and to force the
547 1.3 christos * generation of the CRC tables in a threaded application.
548 1.1 christos */
549 1.4 christos const z_crc_t FAR * ZEXPORT get_crc_table(void) {
550 1.1 christos #ifdef DYNAMIC_CRC_TABLE
551 1.3 christos once(&made, make_crc_table);
552 1.1 christos #endif /* DYNAMIC_CRC_TABLE */
553 1.1 christos return (const z_crc_t FAR *)crc_table;
554 1.1 christos }
555 1.1 christos
556 1.3 christos /* =========================================================================
557 1.3 christos * Use ARM machine instructions if available. This will compute the CRC about
558 1.3 christos * ten times faster than the braided calculation. This code does not check for
559 1.3 christos * the presence of the CRC instruction at run time. __ARM_FEATURE_CRC32 will
560 1.3 christos * only be defined if the compilation specifies an ARM processor architecture
561 1.3 christos * that has the instructions. For example, compiling with -march=armv8.1-a or
562 1.3 christos * -march=armv8-a+crc, or -march=native if the compile machine has the crc32
563 1.3 christos * instructions.
564 1.3 christos */
565 1.3 christos #ifdef ARMCRC32
566 1.3 christos
567 1.3 christos /*
568 1.3 christos Constants empirically determined to maximize speed. These values are from
569 1.3 christos measurements on a Cortex-A57. Your mileage may vary.
570 1.3 christos */
571 1.3 christos #define Z_BATCH 3990 /* number of words in a batch */
572 1.3 christos #define Z_BATCH_ZEROS 0xa10d3d0c /* computed from Z_BATCH = 3990 */
573 1.3 christos #define Z_BATCH_MIN 800 /* fewest words in a final batch */
574 1.1 christos
575 1.4 christos unsigned long ZEXPORT crc32_z(unsigned long crc, const unsigned char FAR *buf,
576 1.4 christos z_size_t len) {
577 1.3 christos z_crc_t val;
578 1.3 christos z_word_t crc1, crc2;
579 1.3 christos const z_word_t *word;
580 1.3 christos z_word_t val0, val1, val2;
581 1.3 christos z_size_t last, last2, i;
582 1.3 christos z_size_t num;
583 1.3 christos
584 1.3 christos /* Return initial CRC, if requested. */
585 1.3 christos if (buf == Z_NULL) return 0;
586 1.1 christos
587 1.1 christos #ifdef DYNAMIC_CRC_TABLE
588 1.3 christos once(&made, make_crc_table);
589 1.1 christos #endif /* DYNAMIC_CRC_TABLE */
590 1.1 christos
591 1.3 christos /* Pre-condition the CRC */
592 1.4 christos crc = (~crc) & 0xffffffff;
593 1.3 christos
594 1.3 christos /* Compute the CRC up to a word boundary. */
595 1.3 christos while (len && ((z_size_t)buf & 7) != 0) {
596 1.3 christos len--;
597 1.3 christos val = *buf++;
598 1.3 christos __asm__ volatile("crc32b %w0, %w0, %w1" : "+r"(crc) : "r"(val));
599 1.3 christos }
600 1.3 christos
601 1.3 christos /* Prepare to compute the CRC on full 64-bit words word[0..num-1]. */
602 1.3 christos word = (z_word_t const *)buf;
603 1.3 christos num = len >> 3;
604 1.3 christos len &= 7;
605 1.3 christos
606 1.3 christos /* Do three interleaved CRCs to realize the throughput of one crc32x
607 1.4 christos instruction per cycle. Each CRC is calculated on Z_BATCH words. The
608 1.4 christos three CRCs are combined into a single CRC after each set of batches. */
609 1.3 christos while (num >= 3 * Z_BATCH) {
610 1.3 christos crc1 = 0;
611 1.3 christos crc2 = 0;
612 1.3 christos for (i = 0; i < Z_BATCH; i++) {
613 1.3 christos val0 = word[i];
614 1.3 christos val1 = word[i + Z_BATCH];
615 1.3 christos val2 = word[i + 2 * Z_BATCH];
616 1.3 christos __asm__ volatile("crc32x %w0, %w0, %x1" : "+r"(crc) : "r"(val0));
617 1.3 christos __asm__ volatile("crc32x %w0, %w0, %x1" : "+r"(crc1) : "r"(val1));
618 1.3 christos __asm__ volatile("crc32x %w0, %w0, %x1" : "+r"(crc2) : "r"(val2));
619 1.3 christos }
620 1.3 christos word += 3 * Z_BATCH;
621 1.3 christos num -= 3 * Z_BATCH;
622 1.3 christos crc = multmodp(Z_BATCH_ZEROS, crc) ^ crc1;
623 1.3 christos crc = multmodp(Z_BATCH_ZEROS, crc) ^ crc2;
624 1.3 christos }
625 1.1 christos
626 1.3 christos /* Do one last smaller batch with the remaining words, if there are enough
627 1.3 christos to pay for the combination of CRCs. */
628 1.3 christos last = num / 3;
629 1.3 christos if (last >= Z_BATCH_MIN) {
630 1.3 christos last2 = last << 1;
631 1.3 christos crc1 = 0;
632 1.3 christos crc2 = 0;
633 1.3 christos for (i = 0; i < last; i++) {
634 1.3 christos val0 = word[i];
635 1.3 christos val1 = word[i + last];
636 1.3 christos val2 = word[i + last2];
637 1.3 christos __asm__ volatile("crc32x %w0, %w0, %x1" : "+r"(crc) : "r"(val0));
638 1.3 christos __asm__ volatile("crc32x %w0, %w0, %x1" : "+r"(crc1) : "r"(val1));
639 1.3 christos __asm__ volatile("crc32x %w0, %w0, %x1" : "+r"(crc2) : "r"(val2));
640 1.3 christos }
641 1.3 christos word += 3 * last;
642 1.3 christos num -= 3 * last;
643 1.3 christos val = x2nmodp(last, 6);
644 1.3 christos crc = multmodp(val, crc) ^ crc1;
645 1.3 christos crc = multmodp(val, crc) ^ crc2;
646 1.3 christos }
647 1.3 christos
648 1.3 christos /* Compute the CRC on any remaining words. */
649 1.3 christos for (i = 0; i < num; i++) {
650 1.3 christos val0 = word[i];
651 1.3 christos __asm__ volatile("crc32x %w0, %w0, %x1" : "+r"(crc) : "r"(val0));
652 1.1 christos }
653 1.3 christos word += num;
654 1.3 christos
655 1.3 christos /* Complete the CRC on any remaining bytes. */
656 1.3 christos buf = (const unsigned char FAR *)word;
657 1.3 christos while (len) {
658 1.3 christos len--;
659 1.3 christos val = *buf++;
660 1.3 christos __asm__ volatile("crc32b %w0, %w0, %w1" : "+r"(crc) : "r"(val));
661 1.1 christos }
662 1.3 christos
663 1.3 christos /* Return the CRC, post-conditioned. */
664 1.3 christos return crc ^ 0xffffffff;
665 1.1 christos }
666 1.1 christos
667 1.3 christos #else
668 1.2 christos
669 1.3 christos #ifdef W
670 1.1 christos
671 1.2 christos /*
672 1.3 christos Return the CRC of the W bytes in the word_t data, taking the
673 1.3 christos least-significant byte of the word as the first byte of data, without any pre
674 1.3 christos or post conditioning. This is used to combine the CRCs of each braid.
675 1.2 christos */
676 1.4 christos local z_crc_t crc_word(z_word_t data) {
677 1.3 christos int k;
678 1.3 christos for (k = 0; k < W; k++)
679 1.3 christos data = (data >> 8) ^ crc_table[data & 0xff];
680 1.3 christos return (z_crc_t)data;
681 1.3 christos }
682 1.3 christos
683 1.4 christos local z_word_t crc_word_big(z_word_t data) {
684 1.3 christos int k;
685 1.3 christos for (k = 0; k < W; k++)
686 1.3 christos data = (data << 8) ^
687 1.3 christos crc_big_table[(data >> ((W - 1) << 3)) & 0xff];
688 1.3 christos return data;
689 1.3 christos }
690 1.2 christos
691 1.3 christos #endif
692 1.1 christos
693 1.1 christos /* ========================================================================= */
694 1.4 christos unsigned long ZEXPORT crc32_z(unsigned long crc, const unsigned char FAR *buf,
695 1.4 christos z_size_t len) {
696 1.3 christos /* Return initial CRC, if requested. */
697 1.3 christos if (buf == Z_NULL) return 0;
698 1.3 christos
699 1.3 christos #ifdef DYNAMIC_CRC_TABLE
700 1.3 christos once(&made, make_crc_table);
701 1.3 christos #endif /* DYNAMIC_CRC_TABLE */
702 1.3 christos
703 1.3 christos /* Pre-condition the CRC */
704 1.4 christos crc = (~crc) & 0xffffffff;
705 1.3 christos
706 1.3 christos #ifdef W
707 1.3 christos
708 1.3 christos /* If provided enough bytes, do a braided CRC calculation. */
709 1.3 christos if (len >= N * W + W - 1) {
710 1.3 christos z_size_t blks;
711 1.3 christos z_word_t const *words;
712 1.3 christos unsigned endian;
713 1.3 christos int k;
714 1.3 christos
715 1.3 christos /* Compute the CRC up to a z_word_t boundary. */
716 1.3 christos while (len && ((z_size_t)buf & (W - 1)) != 0) {
717 1.3 christos len--;
718 1.3 christos crc = (crc >> 8) ^ crc_table[(crc ^ *buf++) & 0xff];
719 1.3 christos }
720 1.3 christos
721 1.3 christos /* Compute the CRC on as many N z_word_t blocks as are available. */
722 1.3 christos blks = len / (N * W);
723 1.3 christos len -= blks * N * W;
724 1.3 christos words = (z_word_t const *)buf;
725 1.3 christos
726 1.3 christos /* Do endian check at execution time instead of compile time, since ARM
727 1.4 christos processors can change the endianness at execution time. If the
728 1.4 christos compiler knows what the endianness will be, it can optimize out the
729 1.3 christos check and the unused branch. */
730 1.3 christos endian = 1;
731 1.3 christos if (*(unsigned char *)&endian) {
732 1.3 christos /* Little endian. */
733 1.3 christos
734 1.3 christos z_crc_t crc0;
735 1.3 christos z_word_t word0;
736 1.3 christos #if N > 1
737 1.3 christos z_crc_t crc1;
738 1.3 christos z_word_t word1;
739 1.3 christos #if N > 2
740 1.3 christos z_crc_t crc2;
741 1.3 christos z_word_t word2;
742 1.3 christos #if N > 3
743 1.3 christos z_crc_t crc3;
744 1.3 christos z_word_t word3;
745 1.3 christos #if N > 4
746 1.3 christos z_crc_t crc4;
747 1.3 christos z_word_t word4;
748 1.3 christos #if N > 5
749 1.3 christos z_crc_t crc5;
750 1.3 christos z_word_t word5;
751 1.3 christos #endif
752 1.3 christos #endif
753 1.3 christos #endif
754 1.3 christos #endif
755 1.3 christos #endif
756 1.3 christos
757 1.3 christos /* Initialize the CRC for each braid. */
758 1.3 christos crc0 = crc;
759 1.3 christos #if N > 1
760 1.3 christos crc1 = 0;
761 1.3 christos #if N > 2
762 1.3 christos crc2 = 0;
763 1.3 christos #if N > 3
764 1.3 christos crc3 = 0;
765 1.3 christos #if N > 4
766 1.3 christos crc4 = 0;
767 1.3 christos #if N > 5
768 1.3 christos crc5 = 0;
769 1.3 christos #endif
770 1.3 christos #endif
771 1.3 christos #endif
772 1.3 christos #endif
773 1.3 christos #endif
774 1.1 christos
775 1.3 christos /*
776 1.3 christos Process the first blks-1 blocks, computing the CRCs on each braid
777 1.3 christos independently.
778 1.3 christos */
779 1.3 christos while (--blks) {
780 1.3 christos /* Load the word for each braid into registers. */
781 1.3 christos word0 = crc0 ^ words[0];
782 1.3 christos #if N > 1
783 1.3 christos word1 = crc1 ^ words[1];
784 1.3 christos #if N > 2
785 1.3 christos word2 = crc2 ^ words[2];
786 1.3 christos #if N > 3
787 1.3 christos word3 = crc3 ^ words[3];
788 1.3 christos #if N > 4
789 1.3 christos word4 = crc4 ^ words[4];
790 1.3 christos #if N > 5
791 1.3 christos word5 = crc5 ^ words[5];
792 1.3 christos #endif
793 1.3 christos #endif
794 1.3 christos #endif
795 1.3 christos #endif
796 1.3 christos #endif
797 1.3 christos words += N;
798 1.3 christos
799 1.3 christos /* Compute and update the CRC for each word. The loop should
800 1.3 christos get unrolled. */
801 1.3 christos crc0 = crc_braid_table[0][word0 & 0xff];
802 1.3 christos #if N > 1
803 1.3 christos crc1 = crc_braid_table[0][word1 & 0xff];
804 1.3 christos #if N > 2
805 1.3 christos crc2 = crc_braid_table[0][word2 & 0xff];
806 1.3 christos #if N > 3
807 1.3 christos crc3 = crc_braid_table[0][word3 & 0xff];
808 1.3 christos #if N > 4
809 1.3 christos crc4 = crc_braid_table[0][word4 & 0xff];
810 1.3 christos #if N > 5
811 1.3 christos crc5 = crc_braid_table[0][word5 & 0xff];
812 1.3 christos #endif
813 1.3 christos #endif
814 1.3 christos #endif
815 1.3 christos #endif
816 1.3 christos #endif
817 1.3 christos for (k = 1; k < W; k++) {
818 1.3 christos crc0 ^= crc_braid_table[k][(word0 >> (k << 3)) & 0xff];
819 1.3 christos #if N > 1
820 1.3 christos crc1 ^= crc_braid_table[k][(word1 >> (k << 3)) & 0xff];
821 1.3 christos #if N > 2
822 1.3 christos crc2 ^= crc_braid_table[k][(word2 >> (k << 3)) & 0xff];
823 1.3 christos #if N > 3
824 1.3 christos crc3 ^= crc_braid_table[k][(word3 >> (k << 3)) & 0xff];
825 1.3 christos #if N > 4
826 1.3 christos crc4 ^= crc_braid_table[k][(word4 >> (k << 3)) & 0xff];
827 1.3 christos #if N > 5
828 1.3 christos crc5 ^= crc_braid_table[k][(word5 >> (k << 3)) & 0xff];
829 1.3 christos #endif
830 1.3 christos #endif
831 1.3 christos #endif
832 1.3 christos #endif
833 1.3 christos #endif
834 1.3 christos }
835 1.3 christos }
836 1.3 christos
837 1.3 christos /*
838 1.3 christos Process the last block, combining the CRCs of the N braids at the
839 1.3 christos same time.
840 1.3 christos */
841 1.3 christos crc = crc_word(crc0 ^ words[0]);
842 1.3 christos #if N > 1
843 1.3 christos crc = crc_word(crc1 ^ words[1] ^ crc);
844 1.3 christos #if N > 2
845 1.3 christos crc = crc_word(crc2 ^ words[2] ^ crc);
846 1.3 christos #if N > 3
847 1.3 christos crc = crc_word(crc3 ^ words[3] ^ crc);
848 1.3 christos #if N > 4
849 1.3 christos crc = crc_word(crc4 ^ words[4] ^ crc);
850 1.3 christos #if N > 5
851 1.3 christos crc = crc_word(crc5 ^ words[5] ^ crc);
852 1.3 christos #endif
853 1.3 christos #endif
854 1.3 christos #endif
855 1.3 christos #endif
856 1.3 christos #endif
857 1.3 christos words += N;
858 1.3 christos }
859 1.3 christos else {
860 1.3 christos /* Big endian. */
861 1.3 christos
862 1.3 christos z_word_t crc0, word0, comb;
863 1.3 christos #if N > 1
864 1.3 christos z_word_t crc1, word1;
865 1.3 christos #if N > 2
866 1.3 christos z_word_t crc2, word2;
867 1.3 christos #if N > 3
868 1.3 christos z_word_t crc3, word3;
869 1.3 christos #if N > 4
870 1.3 christos z_word_t crc4, word4;
871 1.3 christos #if N > 5
872 1.3 christos z_word_t crc5, word5;
873 1.3 christos #endif
874 1.3 christos #endif
875 1.3 christos #endif
876 1.3 christos #endif
877 1.3 christos #endif
878 1.3 christos
879 1.3 christos /* Initialize the CRC for each braid. */
880 1.3 christos crc0 = byte_swap(crc);
881 1.3 christos #if N > 1
882 1.3 christos crc1 = 0;
883 1.3 christos #if N > 2
884 1.3 christos crc2 = 0;
885 1.3 christos #if N > 3
886 1.3 christos crc3 = 0;
887 1.3 christos #if N > 4
888 1.3 christos crc4 = 0;
889 1.3 christos #if N > 5
890 1.3 christos crc5 = 0;
891 1.3 christos #endif
892 1.3 christos #endif
893 1.3 christos #endif
894 1.3 christos #endif
895 1.3 christos #endif
896 1.1 christos
897 1.3 christos /*
898 1.3 christos Process the first blks-1 blocks, computing the CRCs on each braid
899 1.3 christos independently.
900 1.3 christos */
901 1.3 christos while (--blks) {
902 1.3 christos /* Load the word for each braid into registers. */
903 1.3 christos word0 = crc0 ^ words[0];
904 1.3 christos #if N > 1
905 1.3 christos word1 = crc1 ^ words[1];
906 1.3 christos #if N > 2
907 1.3 christos word2 = crc2 ^ words[2];
908 1.3 christos #if N > 3
909 1.3 christos word3 = crc3 ^ words[3];
910 1.3 christos #if N > 4
911 1.3 christos word4 = crc4 ^ words[4];
912 1.3 christos #if N > 5
913 1.3 christos word5 = crc5 ^ words[5];
914 1.3 christos #endif
915 1.3 christos #endif
916 1.3 christos #endif
917 1.3 christos #endif
918 1.3 christos #endif
919 1.3 christos words += N;
920 1.1 christos
921 1.3 christos /* Compute and update the CRC for each word. The loop should
922 1.3 christos get unrolled. */
923 1.3 christos crc0 = crc_braid_big_table[0][word0 & 0xff];
924 1.3 christos #if N > 1
925 1.3 christos crc1 = crc_braid_big_table[0][word1 & 0xff];
926 1.3 christos #if N > 2
927 1.3 christos crc2 = crc_braid_big_table[0][word2 & 0xff];
928 1.3 christos #if N > 3
929 1.3 christos crc3 = crc_braid_big_table[0][word3 & 0xff];
930 1.3 christos #if N > 4
931 1.3 christos crc4 = crc_braid_big_table[0][word4 & 0xff];
932 1.3 christos #if N > 5
933 1.3 christos crc5 = crc_braid_big_table[0][word5 & 0xff];
934 1.3 christos #endif
935 1.3 christos #endif
936 1.3 christos #endif
937 1.3 christos #endif
938 1.3 christos #endif
939 1.3 christos for (k = 1; k < W; k++) {
940 1.3 christos crc0 ^= crc_braid_big_table[k][(word0 >> (k << 3)) & 0xff];
941 1.3 christos #if N > 1
942 1.3 christos crc1 ^= crc_braid_big_table[k][(word1 >> (k << 3)) & 0xff];
943 1.3 christos #if N > 2
944 1.3 christos crc2 ^= crc_braid_big_table[k][(word2 >> (k << 3)) & 0xff];
945 1.3 christos #if N > 3
946 1.3 christos crc3 ^= crc_braid_big_table[k][(word3 >> (k << 3)) & 0xff];
947 1.3 christos #if N > 4
948 1.3 christos crc4 ^= crc_braid_big_table[k][(word4 >> (k << 3)) & 0xff];
949 1.3 christos #if N > 5
950 1.3 christos crc5 ^= crc_braid_big_table[k][(word5 >> (k << 3)) & 0xff];
951 1.3 christos #endif
952 1.3 christos #endif
953 1.3 christos #endif
954 1.3 christos #endif
955 1.3 christos #endif
956 1.3 christos }
957 1.3 christos }
958 1.1 christos
959 1.3 christos /*
960 1.3 christos Process the last block, combining the CRCs of the N braids at the
961 1.3 christos same time.
962 1.3 christos */
963 1.3 christos comb = crc_word_big(crc0 ^ words[0]);
964 1.3 christos #if N > 1
965 1.3 christos comb = crc_word_big(crc1 ^ words[1] ^ comb);
966 1.3 christos #if N > 2
967 1.3 christos comb = crc_word_big(crc2 ^ words[2] ^ comb);
968 1.3 christos #if N > 3
969 1.3 christos comb = crc_word_big(crc3 ^ words[3] ^ comb);
970 1.3 christos #if N > 4
971 1.3 christos comb = crc_word_big(crc4 ^ words[4] ^ comb);
972 1.3 christos #if N > 5
973 1.3 christos comb = crc_word_big(crc5 ^ words[5] ^ comb);
974 1.3 christos #endif
975 1.3 christos #endif
976 1.3 christos #endif
977 1.3 christos #endif
978 1.3 christos #endif
979 1.3 christos words += N;
980 1.3 christos crc = byte_swap(comb);
981 1.3 christos }
982 1.1 christos
983 1.3 christos /*
984 1.3 christos Update the pointer to the remaining bytes to process.
985 1.3 christos */
986 1.3 christos buf = (unsigned char const *)words;
987 1.1 christos }
988 1.1 christos
989 1.3 christos #endif /* W */
990 1.3 christos
991 1.3 christos /* Complete the computation of the CRC on any remaining bytes. */
992 1.3 christos while (len >= 8) {
993 1.3 christos len -= 8;
994 1.3 christos crc = (crc >> 8) ^ crc_table[(crc ^ *buf++) & 0xff];
995 1.3 christos crc = (crc >> 8) ^ crc_table[(crc ^ *buf++) & 0xff];
996 1.3 christos crc = (crc >> 8) ^ crc_table[(crc ^ *buf++) & 0xff];
997 1.3 christos crc = (crc >> 8) ^ crc_table[(crc ^ *buf++) & 0xff];
998 1.3 christos crc = (crc >> 8) ^ crc_table[(crc ^ *buf++) & 0xff];
999 1.3 christos crc = (crc >> 8) ^ crc_table[(crc ^ *buf++) & 0xff];
1000 1.3 christos crc = (crc >> 8) ^ crc_table[(crc ^ *buf++) & 0xff];
1001 1.3 christos crc = (crc >> 8) ^ crc_table[(crc ^ *buf++) & 0xff];
1002 1.1 christos }
1003 1.3 christos while (len) {
1004 1.3 christos len--;
1005 1.3 christos crc = (crc >> 8) ^ crc_table[(crc ^ *buf++) & 0xff];
1006 1.1 christos }
1007 1.1 christos
1008 1.3 christos /* Return the CRC, post-conditioned. */
1009 1.3 christos return crc ^ 0xffffffff;
1010 1.1 christos }
1011 1.1 christos
1012 1.3 christos #endif
1013 1.1 christos
1014 1.1 christos /* ========================================================================= */
1015 1.4 christos unsigned long ZEXPORT crc32(unsigned long crc, const unsigned char FAR *buf,
1016 1.4 christos uInt len) {
1017 1.3 christos return crc32_z(crc, buf, len);
1018 1.1 christos }
1019 1.1 christos
1020 1.1 christos /* ========================================================================= */
1021 1.4 christos uLong ZEXPORT crc32_combine64(uLong crc1, uLong crc2, z_off64_t len2) {
1022 1.3 christos #ifdef DYNAMIC_CRC_TABLE
1023 1.3 christos once(&made, make_crc_table);
1024 1.3 christos #endif /* DYNAMIC_CRC_TABLE */
1025 1.4 christos return multmodp(x2nmodp(len2, 3), crc1) ^ (crc2 & 0xffffffff);
1026 1.1 christos }
1027 1.1 christos
1028 1.1 christos /* ========================================================================= */
1029 1.4 christos uLong ZEXPORT crc32_combine(uLong crc1, uLong crc2, z_off_t len2) {
1030 1.4 christos return crc32_combine64(crc1, crc2, (z_off64_t)len2);
1031 1.3 christos }
1032 1.3 christos
1033 1.3 christos /* ========================================================================= */
1034 1.4 christos uLong ZEXPORT crc32_combine_gen64(z_off64_t len2) {
1035 1.3 christos #ifdef DYNAMIC_CRC_TABLE
1036 1.3 christos once(&made, make_crc_table);
1037 1.3 christos #endif /* DYNAMIC_CRC_TABLE */
1038 1.3 christos return x2nmodp(len2, 3);
1039 1.1 christos }
1040 1.1 christos
1041 1.1 christos /* ========================================================================= */
1042 1.4 christos uLong ZEXPORT crc32_combine_gen(z_off_t len2) {
1043 1.4 christos return crc32_combine_gen64((z_off64_t)len2);
1044 1.1 christos }
1045 1.1 christos
1046 1.3 christos /* ========================================================================= */
1047 1.4 christos uLong ZEXPORT crc32_combine_op(uLong crc1, uLong crc2, uLong op) {
1048 1.4 christos return multmodp(op, crc1) ^ (crc2 & 0xffffffff);
1049 1.1 christos }
1050