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	Replaced all instances of Nicira Networks(, Inc) to Nicira, Inc. Feature #10593 Signed-off-by: Raju Subramanian <rsubramanian@nicira.com> Signed-off-by: Ben Pfaff <blp@nicira.com>
		
			
				
	
	
		
			316 lines
		
	
	
		
			8.8 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
			
		
		
	
	
			316 lines
		
	
	
		
			8.8 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
| /*
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|  * This file is from the Apache Portable Runtime Library.
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|  * The full upstream copyright and license statement is included below.
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|  * Modifications copyright (c) 2009, 2010 Nicira, Inc.
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|  */
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| 
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| /* Licensed to the Apache Software Foundation (ASF) under one or more
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|  * contributor license agreements.  See the NOTICE file distributed with
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|  * this work for additional information regarding copyright ownership.
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|  * The ASF licenses this file to You under the Apache License, Version 2.0
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|  * (the "License"); you may not use this file except in compliance with
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|  * the License.  You may obtain a copy of the License at
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|  *
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|  *     http://www.apache.org/licenses/LICENSE-2.0
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|  *
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|  * Unless required by applicable law or agreed to in writing, software
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|  * distributed under the License is distributed on an "AS IS" BASIS,
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|  * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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|  * See the License for the specific language governing permissions and
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|  * limitations under the License.
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|  */
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| 
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| /* This software also makes use of the following component:
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|  *
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|  * NIST Secure Hash Algorithm
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|  *      heavily modified by Uwe Hollerbach uh@alumni.caltech edu
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|  *  from Peter C. Gutmann's implementation as found in
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|  *  Applied Cryptography by Bruce Schneier
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|  *  This code is hereby placed in the public domain
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|  */
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| 
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| #include <config.h>
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| #include "sha1.h"
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| #include <ctype.h>
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| #include <string.h>
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| #include "compiler.h"
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| #include "util.h"
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| 
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| /* a bit faster & bigger, if defined */
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| #define UNROLL_LOOPS
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| 
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| /* SHA f()-functions */
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| static inline uint32_t
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| f1(uint32_t x, uint32_t y, uint32_t z)
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| {
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|     return (x & y) | (~x & z);
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| }
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| 
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| static inline uint32_t
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| f2(uint32_t x, uint32_t y, uint32_t z)
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| {
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|     return x ^ y ^ z;
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| }
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| 
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| static inline uint32_t
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| f3(uint32_t x, uint32_t y, uint32_t z)
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| {
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|     return (x & y) | (x & z) | (y & z);
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| }
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| 
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| static inline uint32_t
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| f4(uint32_t x, uint32_t y, uint32_t z)
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| {
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|     return x ^ y ^ z;
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| }
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| 
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| /* SHA constants */
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| #define CONST1      0x5a827999L
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| #define CONST2      0x6ed9eba1L
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| #define CONST3      0x8f1bbcdcL
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| #define CONST4      0xca62c1d6L
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| 
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| /* 32-bit rotate */
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| static inline uint32_t
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| rotate32(uint32_t x, int n)
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| {
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|     return ((x << n) | (x >> (32 - n)));
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| }
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| 
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| #define FUNC(n, i)                                                      \
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|     do {                                                                \
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|         temp = rotate32(A, 5) + f##n(B, C, D) + E + W[i] + CONST##n;    \
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|         E = D;                                                          \
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|         D = C;                                                          \
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|         C = rotate32(B, 30);                                            \
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|         B = A;                                                          \
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|         A = temp;                                                       \
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|     } while (0)
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| 
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| #define SHA_BLOCK_SIZE           64
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| 
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| /* Do SHA transformation. */
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| static void
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| sha_transform(struct sha1_ctx *sha_info)
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| {
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|     int i;
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|     uint32_t temp, A, B, C, D, E, W[80];
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| 
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|     for (i = 0; i < 16; ++i) {
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|         W[i] = sha_info->data[i];
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|     }
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|     for (i = 16; i < 80; ++i) {
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|         W[i] = W[i-3] ^ W[i-8] ^ W[i-14] ^ W[i-16];
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|         W[i] = rotate32(W[i], 1);
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|     }
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|     A = sha_info->digest[0];
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|     B = sha_info->digest[1];
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|     C = sha_info->digest[2];
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|     D = sha_info->digest[3];
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|     E = sha_info->digest[4];
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| #ifdef UNROLL_LOOPS
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|     FUNC(1, 0);  FUNC(1, 1);  FUNC(1, 2);  FUNC(1, 3);  FUNC(1, 4);
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|     FUNC(1, 5);  FUNC(1, 6);  FUNC(1, 7);  FUNC(1, 8);  FUNC(1, 9);
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|     FUNC(1,10);  FUNC(1,11);  FUNC(1,12);  FUNC(1,13);  FUNC(1,14);
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|     FUNC(1,15);  FUNC(1,16);  FUNC(1,17);  FUNC(1,18);  FUNC(1,19);
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| 
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|     FUNC(2,20);  FUNC(2,21);  FUNC(2,22);  FUNC(2,23);  FUNC(2,24);
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|     FUNC(2,25);  FUNC(2,26);  FUNC(2,27);  FUNC(2,28);  FUNC(2,29);
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|     FUNC(2,30);  FUNC(2,31);  FUNC(2,32);  FUNC(2,33);  FUNC(2,34);
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|     FUNC(2,35);  FUNC(2,36);  FUNC(2,37);  FUNC(2,38);  FUNC(2,39);
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| 
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|     FUNC(3,40);  FUNC(3,41);  FUNC(3,42);  FUNC(3,43);  FUNC(3,44);
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|     FUNC(3,45);  FUNC(3,46);  FUNC(3,47);  FUNC(3,48);  FUNC(3,49);
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|     FUNC(3,50);  FUNC(3,51);  FUNC(3,52);  FUNC(3,53);  FUNC(3,54);
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|     FUNC(3,55);  FUNC(3,56);  FUNC(3,57);  FUNC(3,58);  FUNC(3,59);
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| 
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|     FUNC(4,60);  FUNC(4,61);  FUNC(4,62);  FUNC(4,63);  FUNC(4,64);
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|     FUNC(4,65);  FUNC(4,66);  FUNC(4,67);  FUNC(4,68);  FUNC(4,69);
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|     FUNC(4,70);  FUNC(4,71);  FUNC(4,72);  FUNC(4,73);  FUNC(4,74);
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|     FUNC(4,75);  FUNC(4,76);  FUNC(4,77);  FUNC(4,78);  FUNC(4,79);
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| #else /* !UNROLL_LOOPS */
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|     for (i = 0; i < 20; ++i) {
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|         FUNC(1,i);
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|     }
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|     for (i = 20; i < 40; ++i) {
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|         FUNC(2,i);
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|     }
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|     for (i = 40; i < 60; ++i) {
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|         FUNC(3,i);
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|     }
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|     for (i = 60; i < 80; ++i) {
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|         FUNC(4,i);
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|     }
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| #endif /* !UNROLL_LOOPS */
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|     sha_info->digest[0] += A;
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|     sha_info->digest[1] += B;
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|     sha_info->digest[2] += C;
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|     sha_info->digest[3] += D;
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|     sha_info->digest[4] += E;
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| }
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| 
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| /* 'count' is the number of bytes to do an endian flip. */
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| static void
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| maybe_byte_reverse(uint32_t *buffer OVS_UNUSED, int count OVS_UNUSED)
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| {
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| #if !WORDS_BIGENDIAN
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|     int i;
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|     uint8_t ct[4], *cp;
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| 
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|     count /= sizeof(uint32_t);
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|     cp = (uint8_t *) buffer;
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|     for (i = 0; i < count; i++) {
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|         ct[0] = cp[0];
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|         ct[1] = cp[1];
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|         ct[2] = cp[2];
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|         ct[3] = cp[3];
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|         cp[0] = ct[3];
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|         cp[1] = ct[2];
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|         cp[2] = ct[1];
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|         cp[3] = ct[0];
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|         cp += sizeof(uint32_t);
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|     }
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| #endif
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| }
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| 
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| /*
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|  * Initialize the SHA digest.
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|  * context: The SHA context to initialize
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|  */
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| void
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| sha1_init(struct sha1_ctx *sha_info)
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| {
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|     sha_info->digest[0] = 0x67452301L;
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|     sha_info->digest[1] = 0xefcdab89L;
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|     sha_info->digest[2] = 0x98badcfeL;
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|     sha_info->digest[3] = 0x10325476L;
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|     sha_info->digest[4] = 0xc3d2e1f0L;
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|     sha_info->count_lo = 0L;
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|     sha_info->count_hi = 0L;
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|     sha_info->local = 0;
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| }
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| 
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| /*
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|  * Update the SHA digest.
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|  * context: The SHA1 context to update.
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|  * input: The buffer to add to the SHA digest.
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|  * inputLen: The length of the input buffer.
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|  */
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| void
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| sha1_update(struct sha1_ctx *ctx, const void *buffer_, size_t count)
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| {
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|     const uint8_t *buffer = buffer_;
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|     unsigned int i;
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| 
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|     if ((ctx->count_lo + (count << 3)) < ctx->count_lo) {
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|         ctx->count_hi++;
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|     }
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|     ctx->count_lo += count << 3;
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|     ctx->count_hi += count >> 29;
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|     if (ctx->local) {
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|         i = SHA_BLOCK_SIZE - ctx->local;
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|         if (i > count) {
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|             i = count;
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|         }
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|         memcpy(((uint8_t *) ctx->data) + ctx->local, buffer, i);
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|         count -= i;
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|         buffer += i;
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|         ctx->local += i;
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|         if (ctx->local == SHA_BLOCK_SIZE) {
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|             maybe_byte_reverse(ctx->data, SHA_BLOCK_SIZE);
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|             sha_transform(ctx);
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|         } else {
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|             return;
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|         }
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|     }
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|     while (count >= SHA_BLOCK_SIZE) {
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|         memcpy(ctx->data, buffer, SHA_BLOCK_SIZE);
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|         buffer += SHA_BLOCK_SIZE;
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|         count -= SHA_BLOCK_SIZE;
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|         maybe_byte_reverse(ctx->data, SHA_BLOCK_SIZE);
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|         sha_transform(ctx);
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|     }
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|     memcpy(ctx->data, buffer, count);
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|     ctx->local = count;
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| }
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| 
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| /*
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|  * Finish computing the SHA digest.
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|  * digest: the output buffer in which to store the digest.
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|  * context: The context to finalize.
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|  */
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| void
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| sha1_final(struct sha1_ctx *ctx, uint8_t digest[SHA1_DIGEST_SIZE])
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| {
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|     int count, i, j;
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|     uint32_t lo_bit_count, hi_bit_count, k;
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| 
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|     lo_bit_count = ctx->count_lo;
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|     hi_bit_count = ctx->count_hi;
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|     count = (int) ((lo_bit_count >> 3) & 0x3f);
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|     ((uint8_t *) ctx->data)[count++] = 0x80;
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|     if (count > SHA_BLOCK_SIZE - 8) {
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|         memset(((uint8_t *) ctx->data) + count, 0, SHA_BLOCK_SIZE - count);
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|         maybe_byte_reverse(ctx->data, SHA_BLOCK_SIZE);
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|         sha_transform(ctx);
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|         memset((uint8_t *) ctx->data, 0, SHA_BLOCK_SIZE - 8);
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|     } else {
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|         memset(((uint8_t *) ctx->data) + count, 0,
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|                SHA_BLOCK_SIZE - 8 - count);
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|     }
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|     maybe_byte_reverse(ctx->data, SHA_BLOCK_SIZE);
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|     ctx->data[14] = hi_bit_count;
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|     ctx->data[15] = lo_bit_count;
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|     sha_transform(ctx);
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| 
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|     for (i = j = 0; j < SHA1_DIGEST_SIZE; i++) {
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|         k = ctx->digest[i];
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|         digest[j++] = k >> 24;
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|         digest[j++] = k >> 16;
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|         digest[j++] = k >> 8;
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|         digest[j++] = k;
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|     }
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| }
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| 
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| /* Computes the hash of 'n' bytes in 'data' into 'digest'. */
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| void
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| sha1_bytes(const void *data, size_t n, uint8_t digest[SHA1_DIGEST_SIZE])
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| {
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|     struct sha1_ctx ctx;
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| 
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|     sha1_init(&ctx);
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|     sha1_update(&ctx, data, n);
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|     sha1_final(&ctx, digest);
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| }
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| 
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| void
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| sha1_to_hex(const uint8_t digest[SHA1_DIGEST_SIZE],
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|             char hex[SHA1_HEX_DIGEST_LEN + 1])
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| {
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|     int i;
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| 
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|     for (i = 0; i < SHA1_DIGEST_SIZE; i++) {
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|         *hex++ = "0123456789abcdef"[digest[i] >> 4];
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|         *hex++ = "0123456789abcdef"[digest[i] & 15];
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|     }
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|     *hex = '\0';
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| }
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| 
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| bool
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| sha1_from_hex(uint8_t digest[SHA1_DIGEST_SIZE], const char *hex)
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| {
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|     int i;
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| 
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|     for (i = 0; i < SHA1_DIGEST_SIZE; i++) {
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|         bool ok;
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| 
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|         digest[i] = hexits_value(hex, 2, &ok);
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|         if (!ok) {
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|             return false;
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|         }
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|         hex += 2;
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|     }
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|     return true;
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| }
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| 
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