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| #ifdef MAKECRCH |
| # include <stdio.h> |
| # ifndef DYNAMIC_CRC_TABLE |
| # define DYNAMIC_CRC_TABLE |
| # endif |
| #endif |
|
|
| #include "zutil.h" |
|
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| |
| #ifdef Z_TESTN |
| # define N Z_TESTN |
| #else |
| # define N 5 |
| #endif |
| #if N < 1 || N > 6 |
| # error N must be in 1..6 |
| #endif |
|
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| |
| #ifdef Z_TESTW |
| # if Z_TESTW-1 != -1 |
| # define W Z_TESTW |
| # endif |
| #else |
| # ifdef MAKECRCH |
| # define W 8 |
| # else |
| # if defined(__x86_64__) || defined(__aarch64__) |
| # define W 8 |
| # else |
| # define W 4 |
| # endif |
| # endif |
| #endif |
| #ifdef W |
| # if W == 8 && defined(Z_U8) |
| typedef Z_U8 z_word_t; |
| # elif defined(Z_U4) |
| # undef W |
| # define W 4 |
| typedef Z_U4 z_word_t; |
| # else |
| # undef W |
| # endif |
| #endif |
|
|
| |
| #if defined(__aarch64__) && defined(__ARM_FEATURE_CRC32) && W == 8 |
| # define ARMCRC32 |
| #endif |
|
|
| #if defined(W) && (!defined(ARMCRC32) || defined(DYNAMIC_CRC_TABLE)) |
| |
| |
| |
| |
| |
| |
| local z_word_t byte_swap(z_word_t word) { |
| # if W == 8 |
| return |
| (word & 0xff00000000000000) >> 56 | |
| (word & 0xff000000000000) >> 40 | |
| (word & 0xff0000000000) >> 24 | |
| (word & 0xff00000000) >> 8 | |
| (word & 0xff000000) << 8 | |
| (word & 0xff0000) << 24 | |
| (word & 0xff00) << 40 | |
| (word & 0xff) << 56; |
| # else |
| return |
| (word & 0xff000000) >> 24 | |
| (word & 0xff0000) >> 8 | |
| (word & 0xff00) << 8 | |
| (word & 0xff) << 24; |
| # endif |
| } |
| #endif |
|
|
| #ifdef DYNAMIC_CRC_TABLE |
| |
| |
| |
| |
| local z_crc_t FAR x2n_table[32]; |
| #else |
| |
| |
| |
| |
| # include "crc32.h" |
| #endif |
|
|
| |
| #define POLY 0xedb88320 |
|
|
| |
| |
| |
| |
| local z_crc_t multmodp(z_crc_t a, z_crc_t b) { |
| z_crc_t m, p; |
|
|
| m = (z_crc_t)1 << 31; |
| p = 0; |
| for (;;) { |
| if (a & m) { |
| p ^= b; |
| if ((a & (m - 1)) == 0) |
| break; |
| } |
| m >>= 1; |
| b = b & 1 ? (b >> 1) ^ POLY : b >> 1; |
| } |
| return p; |
| } |
|
|
| |
| |
| |
| |
| local z_crc_t x2nmodp(z_off64_t n, unsigned k) { |
| z_crc_t p; |
|
|
| p = (z_crc_t)1 << 31; |
| while (n) { |
| if (n & 1) |
| p = multmodp(x2n_table[k & 31], p); |
| n >>= 1; |
| k++; |
| } |
| return p; |
| } |
|
|
| #ifdef DYNAMIC_CRC_TABLE |
| |
| |
| |
| |
| local z_crc_t FAR crc_table[256]; |
| #ifdef W |
| local z_word_t FAR crc_big_table[256]; |
| local z_crc_t FAR crc_braid_table[W][256]; |
| local z_word_t FAR crc_braid_big_table[W][256]; |
| local void braid(z_crc_t [][256], z_word_t [][256], int, int); |
| #endif |
| #ifdef MAKECRCH |
| local void write_table(FILE *, const z_crc_t FAR *, int); |
| local void write_table32hi(FILE *, const z_word_t FAR *, int); |
| local void write_table64(FILE *, const z_word_t FAR *, int); |
| #endif |
|
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| |
| typedef struct once_s once_t; |
|
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| |
| #if defined(__STDC__) && __STDC_VERSION__ >= 201112L && \ |
| !defined(__STDC_NO_ATOMICS__) |
|
|
| #include <stdatomic.h> |
|
|
| |
| struct once_s { |
| atomic_flag begun; |
| atomic_int done; |
| }; |
| #define ONCE_INIT {ATOMIC_FLAG_INIT, 0} |
|
|
| |
| |
| |
| |
| |
| local void once(once_t *state, void (*init)(void)) { |
| if (!atomic_load(&state->done)) { |
| if (atomic_flag_test_and_set(&state->begun)) |
| while (!atomic_load(&state->done)) |
| ; |
| else { |
| init(); |
| atomic_store(&state->done, 1); |
| } |
| } |
| } |
|
|
| #else |
|
|
| |
| struct once_s { |
| volatile int begun; |
| volatile int done; |
| }; |
| #define ONCE_INIT {0, 0} |
|
|
| |
| |
| local int test_and_set(int volatile *flag) { |
| int was; |
|
|
| was = *flag; |
| *flag = 1; |
| return was; |
| } |
|
|
| |
| local void once(once_t *state, void (*init)(void)) { |
| if (!state->done) { |
| if (test_and_set(&state->begun)) |
| while (!state->done) |
| ; |
| else { |
| init(); |
| state->done = 1; |
| } |
| } |
| } |
|
|
| #endif |
|
|
| |
| local once_t made = ONCE_INIT; |
|
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|
| local void make_crc_table(void) { |
| unsigned i, j, n; |
| z_crc_t p; |
|
|
| |
| for (i = 0; i < 256; i++) { |
| p = i; |
| for (j = 0; j < 8; j++) |
| p = p & 1 ? (p >> 1) ^ POLY : p >> 1; |
| crc_table[i] = p; |
| #ifdef W |
| crc_big_table[i] = byte_swap(p); |
| #endif |
| } |
|
|
| |
| p = (z_crc_t)1 << 30; |
| x2n_table[0] = p; |
| for (n = 1; n < 32; n++) |
| x2n_table[n] = p = multmodp(p, p); |
|
|
| #ifdef W |
| |
| braid(crc_braid_table, crc_braid_big_table, N, W); |
| #endif |
|
|
| #ifdef MAKECRCH |
| { |
| |
| |
| |
| |
| |
| |
| #if !defined(W) || W != 8 |
| # error Need a 64-bit integer type in order to generate crc32.h. |
| #endif |
| FILE *out; |
| int k, n; |
| z_crc_t ltl[8][256]; |
| z_word_t big[8][256]; |
|
|
| out = fopen("crc32.h", "w"); |
| if (out == NULL) return; |
|
|
| |
| fprintf(out, |
| "/* crc32.h -- tables for rapid CRC calculation\n" |
| " * Generated automatically by crc32.c\n */\n" |
| "\n" |
| "local const z_crc_t FAR crc_table[] = {\n" |
| " "); |
| write_table(out, crc_table, 256); |
| fprintf(out, |
| "};\n"); |
|
|
| |
| fprintf(out, |
| "\n" |
| "#ifdef W\n" |
| "\n" |
| "#if W == 8\n" |
| "\n" |
| "local const z_word_t FAR crc_big_table[] = {\n" |
| " "); |
| write_table64(out, crc_big_table, 256); |
| fprintf(out, |
| "};\n"); |
|
|
| |
| fprintf(out, |
| "\n" |
| "#else /* W == 4 */\n" |
| "\n" |
| "local const z_word_t FAR crc_big_table[] = {\n" |
| " "); |
| write_table32hi(out, crc_big_table, 256); |
| fprintf(out, |
| "};\n" |
| "\n" |
| "#endif\n"); |
|
|
| |
| for (n = 1; n <= 6; n++) { |
| fprintf(out, |
| "\n" |
| "#if N == %d\n", n); |
|
|
| |
| braid(ltl, big, n, 8); |
|
|
| |
| fprintf(out, |
| "\n" |
| "#if W == 8\n" |
| "\n" |
| "local const z_crc_t FAR crc_braid_table[][256] = {\n"); |
| for (k = 0; k < 8; k++) { |
| fprintf(out, " {"); |
| write_table(out, ltl[k], 256); |
| fprintf(out, "}%s", k < 7 ? ",\n" : ""); |
| } |
| fprintf(out, |
| "};\n" |
| "\n" |
| "local const z_word_t FAR crc_braid_big_table[][256] = {\n"); |
| for (k = 0; k < 8; k++) { |
| fprintf(out, " {"); |
| write_table64(out, big[k], 256); |
| fprintf(out, "}%s", k < 7 ? ",\n" : ""); |
| } |
| fprintf(out, |
| "};\n"); |
|
|
| |
| braid(ltl, big, n, 4); |
|
|
| |
| fprintf(out, |
| "\n" |
| "#else /* W == 4 */\n" |
| "\n" |
| "local const z_crc_t FAR crc_braid_table[][256] = {\n"); |
| for (k = 0; k < 4; k++) { |
| fprintf(out, " {"); |
| write_table(out, ltl[k], 256); |
| fprintf(out, "}%s", k < 3 ? ",\n" : ""); |
| } |
| fprintf(out, |
| "};\n" |
| "\n" |
| "local const z_word_t FAR crc_braid_big_table[][256] = {\n"); |
| for (k = 0; k < 4; k++) { |
| fprintf(out, " {"); |
| write_table32hi(out, big[k], 256); |
| fprintf(out, "}%s", k < 3 ? ",\n" : ""); |
| } |
| fprintf(out, |
| "};\n" |
| "\n" |
| "#endif\n" |
| "\n" |
| "#endif\n"); |
| } |
| fprintf(out, |
| "\n" |
| "#endif\n"); |
|
|
| |
| fprintf(out, |
| "\n" |
| "local const z_crc_t FAR x2n_table[] = {\n" |
| " "); |
| write_table(out, x2n_table, 32); |
| fprintf(out, |
| "};\n"); |
| fclose(out); |
| } |
| #endif |
| } |
|
|
| #ifdef MAKECRCH |
|
|
| |
| |
| |
| |
| local void write_table(FILE *out, const z_crc_t FAR *table, int k) { |
| int n; |
|
|
| for (n = 0; n < k; n++) |
| fprintf(out, "%s0x%08lx%s", n == 0 || n % 5 ? "" : " ", |
| (unsigned long)(table[n]), |
| n == k - 1 ? "" : (n % 5 == 4 ? ",\n" : ", ")); |
| } |
|
|
| |
| |
| |
| |
| local void write_table32hi(FILE *out, const z_word_t FAR *table, int k) { |
| int n; |
|
|
| for (n = 0; n < k; n++) |
| fprintf(out, "%s0x%08lx%s", n == 0 || n % 5 ? "" : " ", |
| (unsigned long)(table[n] >> 32), |
| n == k - 1 ? "" : (n % 5 == 4 ? ",\n" : ", ")); |
| } |
|
|
| |
| |
| |
| |
| |
| |
| |
| local void write_table64(FILE *out, const z_word_t FAR *table, int k) { |
| int n; |
|
|
| for (n = 0; n < k; n++) |
| fprintf(out, "%s0x%016llx%s", n == 0 || n % 3 ? "" : " ", |
| (unsigned long long)(table[n]), |
| n == k - 1 ? "" : (n % 3 == 2 ? ",\n" : ", ")); |
| } |
|
|
| |
| int main(void) { |
| make_crc_table(); |
| return 0; |
| } |
|
|
| #endif |
|
|
| #ifdef W |
| |
| |
| |
| |
| local void braid(z_crc_t ltl[][256], z_word_t big[][256], int n, int w) { |
| int k; |
| z_crc_t i, p, q; |
| for (k = 0; k < w; k++) { |
| p = x2nmodp((n * w + 3 - k) << 3, 0); |
| ltl[k][0] = 0; |
| big[w - 1 - k][0] = 0; |
| for (i = 1; i < 256; i++) { |
| ltl[k][i] = q = multmodp(i << 24, p); |
| big[w - 1 - k][i] = byte_swap(q); |
| } |
| } |
| } |
| #endif |
|
|
| #endif |
|
|
| |
| |
| |
| |
| const z_crc_t FAR * ZEXPORT get_crc_table(void) { |
| #ifdef DYNAMIC_CRC_TABLE |
| once(&made, make_crc_table); |
| #endif |
| return (const z_crc_t FAR *)crc_table; |
| } |
|
|
| |
| |
| |
| |
| |
| |
| |
| |
| |
| #ifdef ARMCRC32 |
|
|
| |
| |
| |
| |
| #define Z_BATCH 3990 |
| #define Z_BATCH_ZEROS 0xa10d3d0c |
| #define Z_BATCH_MIN 800 |
|
|
| unsigned long ZEXPORT crc32_z(unsigned long crc, const unsigned char FAR *buf, |
| z_size_t len) { |
| z_crc_t val; |
| z_word_t crc1, crc2; |
| const z_word_t *word; |
| z_word_t val0, val1, val2; |
| z_size_t last, last2, i; |
| z_size_t num; |
|
|
| |
| if (buf == Z_NULL) return 0; |
|
|
| #ifdef DYNAMIC_CRC_TABLE |
| once(&made, make_crc_table); |
| #endif |
|
|
| |
| crc = (~crc) & 0xffffffff; |
|
|
| |
| while (len && ((z_size_t)buf & 7) != 0) { |
| len--; |
| val = *buf++; |
| __asm__ volatile("crc32b %w0, %w0, %w1" : "+r"(crc) : "r"(val)); |
| } |
|
|
| |
| word = (z_word_t const *)buf; |
| num = len >> 3; |
| len &= 7; |
|
|
| |
| |
| |
| while (num >= 3 * Z_BATCH) { |
| crc1 = 0; |
| crc2 = 0; |
| for (i = 0; i < Z_BATCH; i++) { |
| val0 = word[i]; |
| val1 = word[i + Z_BATCH]; |
| val2 = word[i + 2 * Z_BATCH]; |
| __asm__ volatile("crc32x %w0, %w0, %x1" : "+r"(crc) : "r"(val0)); |
| __asm__ volatile("crc32x %w0, %w0, %x1" : "+r"(crc1) : "r"(val1)); |
| __asm__ volatile("crc32x %w0, %w0, %x1" : "+r"(crc2) : "r"(val2)); |
| } |
| word += 3 * Z_BATCH; |
| num -= 3 * Z_BATCH; |
| crc = multmodp(Z_BATCH_ZEROS, crc) ^ crc1; |
| crc = multmodp(Z_BATCH_ZEROS, crc) ^ crc2; |
| } |
|
|
| |
| |
| last = num / 3; |
| if (last >= Z_BATCH_MIN) { |
| last2 = last << 1; |
| crc1 = 0; |
| crc2 = 0; |
| for (i = 0; i < last; i++) { |
| val0 = word[i]; |
| val1 = word[i + last]; |
| val2 = word[i + last2]; |
| __asm__ volatile("crc32x %w0, %w0, %x1" : "+r"(crc) : "r"(val0)); |
| __asm__ volatile("crc32x %w0, %w0, %x1" : "+r"(crc1) : "r"(val1)); |
| __asm__ volatile("crc32x %w0, %w0, %x1" : "+r"(crc2) : "r"(val2)); |
| } |
| word += 3 * last; |
| num -= 3 * last; |
| val = x2nmodp(last, 6); |
| crc = multmodp(val, crc) ^ crc1; |
| crc = multmodp(val, crc) ^ crc2; |
| } |
|
|
| |
| for (i = 0; i < num; i++) { |
| val0 = word[i]; |
| __asm__ volatile("crc32x %w0, %w0, %x1" : "+r"(crc) : "r"(val0)); |
| } |
| word += num; |
|
|
| |
| buf = (const unsigned char FAR *)word; |
| while (len) { |
| len--; |
| val = *buf++; |
| __asm__ volatile("crc32b %w0, %w0, %w1" : "+r"(crc) : "r"(val)); |
| } |
|
|
| |
| return crc ^ 0xffffffff; |
| } |
|
|
| #else |
|
|
| #ifdef W |
|
|
| |
| |
| |
| |
| |
| local z_crc_t crc_word(z_word_t data) { |
| int k; |
| for (k = 0; k < W; k++) |
| data = (data >> 8) ^ crc_table[data & 0xff]; |
| return (z_crc_t)data; |
| } |
|
|
| local z_word_t crc_word_big(z_word_t data) { |
| int k; |
| for (k = 0; k < W; k++) |
| data = (data << 8) ^ |
| crc_big_table[(data >> ((W - 1) << 3)) & 0xff]; |
| return data; |
| } |
|
|
| #endif |
|
|
| |
| unsigned long ZEXPORT crc32_z(unsigned long crc, const unsigned char FAR *buf, |
| z_size_t len) { |
| |
| if (buf == Z_NULL) return 0; |
|
|
| #ifdef DYNAMIC_CRC_TABLE |
| once(&made, make_crc_table); |
| #endif |
|
|
| |
| crc = (~crc) & 0xffffffff; |
|
|
| #ifdef W |
|
|
| |
| if (len >= N * W + W - 1) { |
| z_size_t blks; |
| z_word_t const *words; |
| unsigned endian; |
| int k; |
|
|
| |
| while (len && ((z_size_t)buf & (W - 1)) != 0) { |
| len--; |
| crc = (crc >> 8) ^ crc_table[(crc ^ *buf++) & 0xff]; |
| } |
|
|
| |
| blks = len / (N * W); |
| len -= blks * N * W; |
| words = (z_word_t const *)buf; |
|
|
| |
| |
| |
| |
| endian = 1; |
| if (*(unsigned char *)&endian) { |
| |
|
|
| z_crc_t crc0; |
| z_word_t word0; |
| #if N > 1 |
| z_crc_t crc1; |
| z_word_t word1; |
| #if N > 2 |
| z_crc_t crc2; |
| z_word_t word2; |
| #if N > 3 |
| z_crc_t crc3; |
| z_word_t word3; |
| #if N > 4 |
| z_crc_t crc4; |
| z_word_t word4; |
| #if N > 5 |
| z_crc_t crc5; |
| z_word_t word5; |
| #endif |
| #endif |
| #endif |
| #endif |
| #endif |
|
|
| |
| crc0 = crc; |
| #if N > 1 |
| crc1 = 0; |
| #if N > 2 |
| crc2 = 0; |
| #if N > 3 |
| crc3 = 0; |
| #if N > 4 |
| crc4 = 0; |
| #if N > 5 |
| crc5 = 0; |
| #endif |
| #endif |
| #endif |
| #endif |
| #endif |
|
|
| |
| |
| |
| |
| while (--blks) { |
| |
| word0 = crc0 ^ words[0]; |
| #if N > 1 |
| word1 = crc1 ^ words[1]; |
| #if N > 2 |
| word2 = crc2 ^ words[2]; |
| #if N > 3 |
| word3 = crc3 ^ words[3]; |
| #if N > 4 |
| word4 = crc4 ^ words[4]; |
| #if N > 5 |
| word5 = crc5 ^ words[5]; |
| #endif |
| #endif |
| #endif |
| #endif |
| #endif |
| words += N; |
|
|
| |
| |
| crc0 = crc_braid_table[0][word0 & 0xff]; |
| #if N > 1 |
| crc1 = crc_braid_table[0][word1 & 0xff]; |
| #if N > 2 |
| crc2 = crc_braid_table[0][word2 & 0xff]; |
| #if N > 3 |
| crc3 = crc_braid_table[0][word3 & 0xff]; |
| #if N > 4 |
| crc4 = crc_braid_table[0][word4 & 0xff]; |
| #if N > 5 |
| crc5 = crc_braid_table[0][word5 & 0xff]; |
| #endif |
| #endif |
| #endif |
| #endif |
| #endif |
| for (k = 1; k < W; k++) { |
| crc0 ^= crc_braid_table[k][(word0 >> (k << 3)) & 0xff]; |
| #if N > 1 |
| crc1 ^= crc_braid_table[k][(word1 >> (k << 3)) & 0xff]; |
| #if N > 2 |
| crc2 ^= crc_braid_table[k][(word2 >> (k << 3)) & 0xff]; |
| #if N > 3 |
| crc3 ^= crc_braid_table[k][(word3 >> (k << 3)) & 0xff]; |
| #if N > 4 |
| crc4 ^= crc_braid_table[k][(word4 >> (k << 3)) & 0xff]; |
| #if N > 5 |
| crc5 ^= crc_braid_table[k][(word5 >> (k << 3)) & 0xff]; |
| #endif |
| #endif |
| #endif |
| #endif |
| #endif |
| } |
| } |
|
|
| |
| |
| |
| |
| crc = crc_word(crc0 ^ words[0]); |
| #if N > 1 |
| crc = crc_word(crc1 ^ words[1] ^ crc); |
| #if N > 2 |
| crc = crc_word(crc2 ^ words[2] ^ crc); |
| #if N > 3 |
| crc = crc_word(crc3 ^ words[3] ^ crc); |
| #if N > 4 |
| crc = crc_word(crc4 ^ words[4] ^ crc); |
| #if N > 5 |
| crc = crc_word(crc5 ^ words[5] ^ crc); |
| #endif |
| #endif |
| #endif |
| #endif |
| #endif |
| words += N; |
| } |
| else { |
| |
|
|
| z_word_t crc0, word0, comb; |
| #if N > 1 |
| z_word_t crc1, word1; |
| #if N > 2 |
| z_word_t crc2, word2; |
| #if N > 3 |
| z_word_t crc3, word3; |
| #if N > 4 |
| z_word_t crc4, word4; |
| #if N > 5 |
| z_word_t crc5, word5; |
| #endif |
| #endif |
| #endif |
| #endif |
| #endif |
|
|
| |
| crc0 = byte_swap(crc); |
| #if N > 1 |
| crc1 = 0; |
| #if N > 2 |
| crc2 = 0; |
| #if N > 3 |
| crc3 = 0; |
| #if N > 4 |
| crc4 = 0; |
| #if N > 5 |
| crc5 = 0; |
| #endif |
| #endif |
| #endif |
| #endif |
| #endif |
|
|
| |
| |
| |
| |
| while (--blks) { |
| |
| word0 = crc0 ^ words[0]; |
| #if N > 1 |
| word1 = crc1 ^ words[1]; |
| #if N > 2 |
| word2 = crc2 ^ words[2]; |
| #if N > 3 |
| word3 = crc3 ^ words[3]; |
| #if N > 4 |
| word4 = crc4 ^ words[4]; |
| #if N > 5 |
| word5 = crc5 ^ words[5]; |
| #endif |
| #endif |
| #endif |
| #endif |
| #endif |
| words += N; |
|
|
| |
| |
| crc0 = crc_braid_big_table[0][word0 & 0xff]; |
| #if N > 1 |
| crc1 = crc_braid_big_table[0][word1 & 0xff]; |
| #if N > 2 |
| crc2 = crc_braid_big_table[0][word2 & 0xff]; |
| #if N > 3 |
| crc3 = crc_braid_big_table[0][word3 & 0xff]; |
| #if N > 4 |
| crc4 = crc_braid_big_table[0][word4 & 0xff]; |
| #if N > 5 |
| crc5 = crc_braid_big_table[0][word5 & 0xff]; |
| #endif |
| #endif |
| #endif |
| #endif |
| #endif |
| for (k = 1; k < W; k++) { |
| crc0 ^= crc_braid_big_table[k][(word0 >> (k << 3)) & 0xff]; |
| #if N > 1 |
| crc1 ^= crc_braid_big_table[k][(word1 >> (k << 3)) & 0xff]; |
| #if N > 2 |
| crc2 ^= crc_braid_big_table[k][(word2 >> (k << 3)) & 0xff]; |
| #if N > 3 |
| crc3 ^= crc_braid_big_table[k][(word3 >> (k << 3)) & 0xff]; |
| #if N > 4 |
| crc4 ^= crc_braid_big_table[k][(word4 >> (k << 3)) & 0xff]; |
| #if N > 5 |
| crc5 ^= crc_braid_big_table[k][(word5 >> (k << 3)) & 0xff]; |
| #endif |
| #endif |
| #endif |
| #endif |
| #endif |
| } |
| } |
|
|
| |
| |
| |
| |
| comb = crc_word_big(crc0 ^ words[0]); |
| #if N > 1 |
| comb = crc_word_big(crc1 ^ words[1] ^ comb); |
| #if N > 2 |
| comb = crc_word_big(crc2 ^ words[2] ^ comb); |
| #if N > 3 |
| comb = crc_word_big(crc3 ^ words[3] ^ comb); |
| #if N > 4 |
| comb = crc_word_big(crc4 ^ words[4] ^ comb); |
| #if N > 5 |
| comb = crc_word_big(crc5 ^ words[5] ^ comb); |
| #endif |
| #endif |
| #endif |
| #endif |
| #endif |
| words += N; |
| crc = byte_swap(comb); |
| } |
|
|
| |
| |
| |
| buf = (unsigned char const *)words; |
| } |
|
|
| #endif |
|
|
| |
| while (len >= 8) { |
| len -= 8; |
| crc = (crc >> 8) ^ crc_table[(crc ^ *buf++) & 0xff]; |
| crc = (crc >> 8) ^ crc_table[(crc ^ *buf++) & 0xff]; |
| crc = (crc >> 8) ^ crc_table[(crc ^ *buf++) & 0xff]; |
| crc = (crc >> 8) ^ crc_table[(crc ^ *buf++) & 0xff]; |
| crc = (crc >> 8) ^ crc_table[(crc ^ *buf++) & 0xff]; |
| crc = (crc >> 8) ^ crc_table[(crc ^ *buf++) & 0xff]; |
| crc = (crc >> 8) ^ crc_table[(crc ^ *buf++) & 0xff]; |
| crc = (crc >> 8) ^ crc_table[(crc ^ *buf++) & 0xff]; |
| } |
| while (len) { |
| len--; |
| crc = (crc >> 8) ^ crc_table[(crc ^ *buf++) & 0xff]; |
| } |
|
|
| |
| return crc ^ 0xffffffff; |
| } |
|
|
| #endif |
|
|
| |
| unsigned long ZEXPORT crc32(unsigned long crc, const unsigned char FAR *buf, |
| uInt len) { |
| return crc32_z(crc, buf, len); |
| } |
|
|
| |
| uLong ZEXPORT crc32_combine64(uLong crc1, uLong crc2, z_off64_t len2) { |
| #ifdef DYNAMIC_CRC_TABLE |
| once(&made, make_crc_table); |
| #endif |
| return multmodp(x2nmodp(len2, 3), crc1) ^ (crc2 & 0xffffffff); |
| } |
|
|
| |
| uLong ZEXPORT crc32_combine(uLong crc1, uLong crc2, z_off_t len2) { |
| return crc32_combine64(crc1, crc2, (z_off64_t)len2); |
| } |
|
|
| |
| uLong ZEXPORT crc32_combine_gen64(z_off64_t len2) { |
| #ifdef DYNAMIC_CRC_TABLE |
| once(&made, make_crc_table); |
| #endif |
| return x2nmodp(len2, 3); |
| } |
|
|
| |
| uLong ZEXPORT crc32_combine_gen(z_off_t len2) { |
| return crc32_combine_gen64((z_off64_t)len2); |
| } |
|
|
| |
| uLong ZEXPORT crc32_combine_op(uLong crc1, uLong crc2, uLong op) { |
| return multmodp(op, crc1) ^ (crc2 & 0xffffffff); |
| } |
|
|