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att
GitHub Repository: att/ast
Path: blob/master/src/lib/libsum/sum-sha1.c
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#pragma prototyped
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/*
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* SHA-1 in C
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* By Steve Reid <[email protected]>
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* 100% Public Domain
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*
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* Test Vectors (from FIPS PUB 180-1)
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* "abc"
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* A9993E36 4706816A BA3E2571 7850C26C 9CD0D89D
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* "abcdbcdecdefdefgefghfghighijhijkijkljklmklmnlmnomnopnopq"
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* 84983E44 1C3BD26E BAAE4AA1 F95129E5 E54670F1
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* A million repetitions of "a"
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* 34AA973C D4C4DAA4 F61EEB2B DBAD2731 6534016F
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*/
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#define sha1_description "FIPS 180-1 SHA-1 secure hash algorithm 1."
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#define sha1_options "[+(version)?sha1 (FIPS 180-1) 1996-09-26]\
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[+(author)?Steve Reid <[email protected]>]"
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#define sha1_match "sha1|SHA1|sha-1|SHA-1"
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#define sha1_scale 0
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#define sha1_padding md5_pad
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typedef struct Sha1_s
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{
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_SUM_PUBLIC_
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_SUM_PRIVATE_
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uint32_t count[2];
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uint32_t state[5];
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uint8_t buffer[64];
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uint8_t digest[20];
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uint8_t digest_sum[20];
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} Sha1_t;
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#define rol(value, bits) (((value) << (bits)) | ((value) >> (32 - (bits))))
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/*
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* blk0() and blk() perform the initial expand.
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* I got the idea of expanding during the round function from SSLeay
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*/
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#if _ast_intswap
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# define blk0(i) \
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(block->l[i] = (rol(block->l[i], 24) & 0xFF00FF00) \
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| (rol(block->l[i], 8) & 0x00FF00FF))
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#else
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# define blk0(i) block->l[i]
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#endif
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#define blk(i) \
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(block->l[i & 15] = rol(block->l[(i + 13) & 15] \
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^ block->l[(i + 8) & 15] \
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^ block->l[(i + 2) & 15] \
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^ block->l[i & 15], 1))
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/*
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* (R0+R1), R2, R3, R4 are the different operations (rounds) used in SHA1
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*/
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#define R0(v,w,x,y,z,i) \
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z += ((w & (x ^ y)) ^ y) + blk0(i) + 0x5A827999 + rol(v, 5); \
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w = rol(w, 30);
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#define R1(v,w,x,y,z,i) \
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z += ((w & (x ^ y)) ^ y) + blk(i) + 0x5A827999 + rol(v, 5); \
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w = rol(w, 30);
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#define R2(v,w,x,y,z,i) \
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z += (w ^ x ^ y) + blk(i) + 0x6ED9EBA1 + rol(v, 5); \
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w = rol(w, 30);
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#define R3(v,w,x,y,z,i) \
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z += (((w | x) & y) | (w & x)) + blk(i) + 0x8F1BBCDC + rol(v, 5); \
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w = rol(w, 30);
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#define R4(v,w,x,y,z,i) \
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z += (w ^ x ^ y) + blk(i) + 0xCA62C1D6 + rol(v, 5); \
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w = rol(w, 30);
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typedef union {
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unsigned char c[64];
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unsigned int l[16];
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} CHAR64LONG16;
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#ifdef __sparc_v9__
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static void do_R01(uint32_t *a, uint32_t *b, uint32_t *c,
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uint32_t *d, uint32_t *e, CHAR64LONG16 *);
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static void do_R2(uint32_t *a, uint32_t *b, uint32_t *c,
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uint32_t *d, uint32_t *e, CHAR64LONG16 *);
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static void do_R3(uint32_t *a, uint32_t *b, uint32_t *c,
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uint32_t *d, uint32_t *e, CHAR64LONG16 *);
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static void do_R4(uint32_t *a, uint32_t *b, uint32_t *c,
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uint32_t *d, uint32_t *e, CHAR64LONG16 *);
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#define nR0(v,w,x,y,z,i) R0(*v,*w,*x,*y,*z,i)
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#define nR1(v,w,x,y,z,i) R1(*v,*w,*x,*y,*z,i)
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#define nR2(v,w,x,y,z,i) R2(*v,*w,*x,*y,*z,i)
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#define nR3(v,w,x,y,z,i) R3(*v,*w,*x,*y,*z,i)
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#define nR4(v,w,x,y,z,i) R4(*v,*w,*x,*y,*z,i)
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static void
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do_R01(uint32_t *a, uint32_t *b, uint32_t *c, uint32_t *d,
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uint32_t *e, CHAR64LONG16 *block)
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{
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nR0(a,b,c,d,e, 0); nR0(e,a,b,c,d, 1); nR0(d,e,a,b,c, 2);
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nR0(c,d,e,a,b, 3); nR0(b,c,d,e,a, 4); nR0(a,b,c,d,e, 5);
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nR0(e,a,b,c,d, 6); nR0(d,e,a,b,c, 7); nR0(c,d,e,a,b, 8);
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nR0(b,c,d,e,a, 9); nR0(a,b,c,d,e,10); nR0(e,a,b,c,d,11);
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nR0(d,e,a,b,c,12); nR0(c,d,e,a,b,13); nR0(b,c,d,e,a,14);
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nR0(a,b,c,d,e,15); nR1(e,a,b,c,d,16); nR1(d,e,a,b,c,17);
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nR1(c,d,e,a,b,18); nR1(b,c,d,e,a,19);
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}
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static void
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do_R2(uint32_t *a, uint32_t *b, uint32_t *c, uint32_t *d,
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uint32_t *e, CHAR64LONG16 *block)
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{
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nR2(a,b,c,d,e,20); nR2(e,a,b,c,d,21); nR2(d,e,a,b,c,22);
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nR2(c,d,e,a,b,23); nR2(b,c,d,e,a,24); nR2(a,b,c,d,e,25);
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nR2(e,a,b,c,d,26); nR2(d,e,a,b,c,27); nR2(c,d,e,a,b,28);
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nR2(b,c,d,e,a,29); nR2(a,b,c,d,e,30); nR2(e,a,b,c,d,31);
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nR2(d,e,a,b,c,32); nR2(c,d,e,a,b,33); nR2(b,c,d,e,a,34);
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nR2(a,b,c,d,e,35); nR2(e,a,b,c,d,36); nR2(d,e,a,b,c,37);
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nR2(c,d,e,a,b,38); nR2(b,c,d,e,a,39);
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}
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static void
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do_R3(uint32_t *a, uint32_t *b, uint32_t *c, uint32_t *d,
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uint32_t *e, CHAR64LONG16 *block)
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{
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nR3(a,b,c,d,e,40); nR3(e,a,b,c,d,41); nR3(d,e,a,b,c,42);
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nR3(c,d,e,a,b,43); nR3(b,c,d,e,a,44); nR3(a,b,c,d,e,45);
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nR3(e,a,b,c,d,46); nR3(d,e,a,b,c,47); nR3(c,d,e,a,b,48);
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nR3(b,c,d,e,a,49); nR3(a,b,c,d,e,50); nR3(e,a,b,c,d,51);
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nR3(d,e,a,b,c,52); nR3(c,d,e,a,b,53); nR3(b,c,d,e,a,54);
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nR3(a,b,c,d,e,55); nR3(e,a,b,c,d,56); nR3(d,e,a,b,c,57);
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nR3(c,d,e,a,b,58); nR3(b,c,d,e,a,59);
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}
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static void
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do_R4(uint32_t *a, uint32_t *b, uint32_t *c, uint32_t *d,
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uint32_t *e, CHAR64LONG16 *block)
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{
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nR4(a,b,c,d,e,60); nR4(e,a,b,c,d,61); nR4(d,e,a,b,c,62);
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nR4(c,d,e,a,b,63); nR4(b,c,d,e,a,64); nR4(a,b,c,d,e,65);
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nR4(e,a,b,c,d,66); nR4(d,e,a,b,c,67); nR4(c,d,e,a,b,68);
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nR4(b,c,d,e,a,69); nR4(a,b,c,d,e,70); nR4(e,a,b,c,d,71);
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nR4(d,e,a,b,c,72); nR4(c,d,e,a,b,73); nR4(b,c,d,e,a,74);
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nR4(a,b,c,d,e,75); nR4(e,a,b,c,d,76); nR4(d,e,a,b,c,77);
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nR4(c,d,e,a,b,78); nR4(b,c,d,e,a,79);
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}
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#endif
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/*
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* Hash a single 512-bit block. This is the core of the algorithm.
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*/
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static void
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sha1_transform(uint32_t state[5], const unsigned char buffer[64]) {
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uint32_t a, b, c, d, e;
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CHAR64LONG16 *block;
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CHAR64LONG16 workspace;
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block = &workspace;
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(void)memcpy(block, buffer, 64);
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/* Copy sha->state[] to working vars */
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a = state[0];
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b = state[1];
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c = state[2];
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d = state[3];
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e = state[4];
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#ifdef __sparc_v9__
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do_R01(&a, &b, &c, &d, &e, block);
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do_R2(&a, &b, &c, &d, &e, block);
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do_R3(&a, &b, &c, &d, &e, block);
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do_R4(&a, &b, &c, &d, &e, block);
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#else
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/* 4 rounds of 20 operations each. Loop unrolled. */
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R0(a,b,c,d,e, 0); R0(e,a,b,c,d, 1); R0(d,e,a,b,c, 2); R0(c,d,e,a,b, 3);
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R0(b,c,d,e,a, 4); R0(a,b,c,d,e, 5); R0(e,a,b,c,d, 6); R0(d,e,a,b,c, 7);
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R0(c,d,e,a,b, 8); R0(b,c,d,e,a, 9); R0(a,b,c,d,e,10); R0(e,a,b,c,d,11);
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R0(d,e,a,b,c,12); R0(c,d,e,a,b,13); R0(b,c,d,e,a,14); R0(a,b,c,d,e,15);
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R1(e,a,b,c,d,16); R1(d,e,a,b,c,17); R1(c,d,e,a,b,18); R1(b,c,d,e,a,19);
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R2(a,b,c,d,e,20); R2(e,a,b,c,d,21); R2(d,e,a,b,c,22); R2(c,d,e,a,b,23);
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R2(b,c,d,e,a,24); R2(a,b,c,d,e,25); R2(e,a,b,c,d,26); R2(d,e,a,b,c,27);
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R2(c,d,e,a,b,28); R2(b,c,d,e,a,29); R2(a,b,c,d,e,30); R2(e,a,b,c,d,31);
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R2(d,e,a,b,c,32); R2(c,d,e,a,b,33); R2(b,c,d,e,a,34); R2(a,b,c,d,e,35);
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R2(e,a,b,c,d,36); R2(d,e,a,b,c,37); R2(c,d,e,a,b,38); R2(b,c,d,e,a,39);
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R3(a,b,c,d,e,40); R3(e,a,b,c,d,41); R3(d,e,a,b,c,42); R3(c,d,e,a,b,43);
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R3(b,c,d,e,a,44); R3(a,b,c,d,e,45); R3(e,a,b,c,d,46); R3(d,e,a,b,c,47);
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R3(c,d,e,a,b,48); R3(b,c,d,e,a,49); R3(a,b,c,d,e,50); R3(e,a,b,c,d,51);
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R3(d,e,a,b,c,52); R3(c,d,e,a,b,53); R3(b,c,d,e,a,54); R3(a,b,c,d,e,55);
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R3(e,a,b,c,d,56); R3(d,e,a,b,c,57); R3(c,d,e,a,b,58); R3(b,c,d,e,a,59);
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R4(a,b,c,d,e,60); R4(e,a,b,c,d,61); R4(d,e,a,b,c,62); R4(c,d,e,a,b,63);
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R4(b,c,d,e,a,64); R4(a,b,c,d,e,65); R4(e,a,b,c,d,66); R4(d,e,a,b,c,67);
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R4(c,d,e,a,b,68); R4(b,c,d,e,a,69); R4(a,b,c,d,e,70); R4(e,a,b,c,d,71);
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R4(d,e,a,b,c,72); R4(c,d,e,a,b,73); R4(b,c,d,e,a,74); R4(a,b,c,d,e,75);
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R4(e,a,b,c,d,76); R4(d,e,a,b,c,77); R4(c,d,e,a,b,78); R4(b,c,d,e,a,79);
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#endif
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/* Add the working vars back into context.state[] */
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state[0] += a;
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state[1] += b;
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state[2] += c;
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state[3] += d;
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state[4] += e;
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/* Wipe variables */
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a = b = c = d = e = 0;
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}
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static int
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sha1_block(register Sum_t* p, const void* s, size_t len)
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{
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Sha1_t* sha = (Sha1_t*)p;
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uint8_t* data = (uint8_t*)s;
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unsigned int i, j;
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if (len) {
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j = sha->count[0];
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if ((sha->count[0] += len << 3) < j)
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sha->count[1] += (len >> 29) + 1;
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j = (j >> 3) & 63;
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if ((j + len) > 63) {
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(void)memcpy(&sha->buffer[j], data, (i = 64 - j));
221
sha1_transform(sha->state, sha->buffer);
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for ( ; i + 63 < len; i += 64)
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sha1_transform(sha->state, &data[i]);
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j = 0;
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} else {
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i = 0;
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}
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(void)memcpy(&sha->buffer[j], &data[i], len - i);
230
}
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return 0;
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}
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static int
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sha1_init(Sum_t* p)
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{
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register Sha1_t* sha = (Sha1_t*)p;
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sha->count[0] = sha->count[1] = 0;
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sha->state[0] = 0x67452301;
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sha->state[1] = 0xEFCDAB89;
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sha->state[2] = 0x98BADCFE;
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sha->state[3] = 0x10325476;
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sha->state[4] = 0xC3D2E1F0;
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return 0;
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}
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static Sum_t*
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sha1_open(const Method_t* method, const char* name)
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{
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Sha1_t* sha;
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if (sha = newof(0, Sha1_t, 1, 0))
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{
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sha->method = (Method_t*)method;
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sha->name = name;
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sha1_init((Sum_t*)sha);
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}
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return (Sum_t*)sha;
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}
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/*
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* Add padding and return the message digest.
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*/
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static const unsigned char final_200 = 128;
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static const unsigned char final_0 = 0;
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static int
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sha1_done(Sum_t* p)
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{
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Sha1_t* sha = (Sha1_t*)p;
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unsigned int i;
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unsigned char finalcount[8];
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for (i = 0; i < 8; i++) {
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/* Endian independent */
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finalcount[i] = (unsigned char)
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((sha->count[(i >= 4 ? 0 : 1)]
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>> ((3 - (i & 3)) * 8)) & 255);
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}
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sha1_block(p, &final_200, 1);
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while ((sha->count[0] & 504) != 448)
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sha1_block(p, &final_0, 1);
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/* The next Update should cause a sha1_transform() */
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sha1_block(p, finalcount, 8);
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for (i = 0; i < elementsof(sha->digest); i++)
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{
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sha->digest[i] = (unsigned char)((sha->state[i >> 2] >> ((3 - (i & 3)) * 8)) & 255);
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sha->digest_sum[i] ^= sha->digest[i];
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}
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memset(sha->count, 0, sizeof(sha->count));
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memset(sha->state, 0, sizeof(sha->state));
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memset(sha->buffer, 0, sizeof(sha->buffer));
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return 0;
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}
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static int
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sha1_print(Sum_t* p, Sfio_t* sp, register int flags, size_t scale)
303
{
304
register Sha1_t* sha = (Sha1_t*)p;
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register unsigned char* d;
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register int n;
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d = (flags & SUM_TOTAL) ? sha->digest_sum : sha->digest;
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for (n = 0; n < elementsof(sha->digest); n++)
310
sfprintf(sp, "%02x", d[n]);
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return 0;
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}
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static int
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sha1_data(Sum_t* p, Sumdata_t* data)
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{
317
register Sha1_t* sha = (Sha1_t*)p;
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data->size = elementsof(sha->digest);
320
data->num = 0;
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data->buf = sha->digest;
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return 0;
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}
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