Cleaning code :
- Better MD5 implementation (faster) - Cleanest Websocket (r76) "security key" computing
This commit is contained in:
parent
a59f1cd269
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66f511e17b
629
utils/md5.c
629
utils/md5.c
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@ -1,458 +1,255 @@
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/* Functions to compute MD5 message digest of files or memory blocks.
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according to the definition of MD5 in RFC 1321 from April 1992.
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Copyright (C) 1995,1996,1997,1999,2000,2001,2005
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Free Software Foundation, Inc.
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This file is part of the GNU C Library.
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/*
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Christophe Devine
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c.devine@cr0.net
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http://www.cr0.net:8040/code/crypto/
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*/
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/*
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* RFC 1321 compliant MD5 implementation
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*
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* Copyright (C) 2001-2003 Christophe Devine
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*
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* This program is free software; you can redistribute it and/or modify
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* it under the terms of the GNU General Public License as published by
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* the Free Software Foundation; either version 2 of the License, or
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* (at your option) any later version.
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*
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* This program is distributed in the hope that it will be useful,
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* but WITHOUT ANY WARRANTY; without even the implied warranty of
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* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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* GNU General Public License for more details.
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*
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* You should have received a copy of the GNU General Public License
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* along with this program; if not, write to the Free Software
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* Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
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*/
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The GNU C Library is free software; you can redistribute it and/or
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modify it under the terms of the GNU Lesser General Public
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License as published by the Free Software Foundation; either
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version 2.1 of the License, or (at your option) any later version.
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The GNU C Library is distributed in the hope that it will be useful,
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but WITHOUT ANY WARRANTY; without even the implied warranty of
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MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
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Lesser General Public License for more details.
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You should have received a copy of the GNU Lesser General Public
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License along with the GNU C Library; if not, write to the Free
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Software Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA
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02111-1307 USA. */
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/* Written by Ulrich Drepper <drepper@gnu.ai.mit.edu>, 1995. */
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#ifdef HAVE_CONFIG_H
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# include <config.h>
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#endif
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#include <sys/types.h>
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#if STDC_HEADERS || defined _LIBC
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# include <stdlib.h>
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# include <string.h>
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#else
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# ifndef HAVE_MEMCPY
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# define memcpy(d, s, n) (bcopy ((s), (d), (n)), (d))
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# endif
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#endif
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#include <string.h>
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#include "md5.h"
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/* uncomment the following line to run the test suite */
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#ifdef _LIBC
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# include <endian.h>
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# if __BYTE_ORDER == __BIG_ENDIAN
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# define WORDS_BIGENDIAN 1
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# endif
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/* We need to keep the namespace clean so define the MD5 function
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protected using leading __ . */
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# define md5_init_ctx __md5_init_ctx
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# define md5_process_block __md5_process_block
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# define md5_process_bytes __md5_process_bytes
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# define md5_finish_ctx __md5_finish_ctx
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# define md5_read_ctx __md5_read_ctx
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# define md5_stream __md5_stream
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# define md5_buffer __md5_buffer
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#endif
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/* #define TEST */
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#ifdef WORDS_BIGENDIAN
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# define SWAP(n) \
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(((n) << 24) | (((n) & 0xff00) << 8) | (((n) >> 8) & 0xff00) | ((n) >> 24))
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#else
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# define SWAP(n) (n)
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#endif
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/* This array contains the bytes used to pad the buffer to the next
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64-byte boundary. (RFC 1321, 3.1: Step 1) */
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static const unsigned char fillbuf[64] = { 0x80, 0 /* , 0, 0, ... */ };
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/* Initialize structure containing state of computation.
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(RFC 1321, 3.3: Step 3) */
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void
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md5_init_ctx (ctx)
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struct md5_ctx *ctx;
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{
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ctx->A = 0x67452301;
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ctx->B = 0xefcdab89;
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ctx->C = 0x98badcfe;
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ctx->D = 0x10325476;
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ctx->total[0] = ctx->total[1] = 0;
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ctx->buflen = 0;
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#define GET_UINT32(n,b,i) \
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{ \
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(n) = ( (uint32) (b)[(i) ] ) \
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| ( (uint32) (b)[(i) + 1] << 8 ) \
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| ( (uint32) (b)[(i) + 2] << 16 ) \
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| ( (uint32) (b)[(i) + 3] << 24 ); \
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}
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/* Put result from CTX in first 16 bytes following RESBUF. The result
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must be in little endian byte order.
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IMPORTANT: On some systems it is required that RESBUF is correctly
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aligned for a 32 bits value. */
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void *
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md5_read_ctx (ctx, resbuf)
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const struct md5_ctx *ctx;
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void *resbuf;
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{
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((md5_uint32 *) resbuf)[0] = SWAP (ctx->A);
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((md5_uint32 *) resbuf)[1] = SWAP (ctx->B);
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((md5_uint32 *) resbuf)[2] = SWAP (ctx->C);
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((md5_uint32 *) resbuf)[3] = SWAP (ctx->D);
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return resbuf;
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#define PUT_UINT32(n,b,i) \
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{ \
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(b)[(i) ] = (uint8) ( (n) ); \
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(b)[(i) + 1] = (uint8) ( (n) >> 8 ); \
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(b)[(i) + 2] = (uint8) ( (n) >> 16 ); \
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(b)[(i) + 3] = (uint8) ( (n) >> 24 ); \
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}
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/* Process the remaining bytes in the internal buffer and the usual
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prolog according to the standard and write the result to RESBUF.
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IMPORTANT: On some systems it is required that RESBUF is correctly
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aligned for a 32 bits value. */
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void *
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md5_finish_ctx (ctx, resbuf)
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struct md5_ctx *ctx;
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void *resbuf;
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void md5_starts( md5_context *ctx )
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{
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/* Take yet unprocessed bytes into account. */
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md5_uint32 bytes = ctx->buflen;
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size_t pad;
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ctx->total[0] = 0;
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ctx->total[1] = 0;
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/* Now count remaining bytes. */
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ctx->total[0] += bytes;
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if (ctx->total[0] < bytes)
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++ctx->total[1];
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pad = bytes >= 56 ? 64 + 56 - bytes : 56 - bytes;
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memcpy (&ctx->buffer[bytes], fillbuf, pad);
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/* Put the 64-bit file length in *bits* at the end of the buffer. */
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*(md5_uint32 *) &ctx->buffer[bytes + pad] = SWAP (ctx->total[0] << 3);
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*(md5_uint32 *) &ctx->buffer[bytes + pad + 4] = SWAP ((ctx->total[1] << 3) |
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(ctx->total[0] >> 29));
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/* Process last bytes. */
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md5_process_block (ctx->buffer, bytes + pad + 8, ctx);
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return md5_read_ctx (ctx, resbuf);
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ctx->state[0] = 0x67452301;
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ctx->state[1] = 0xEFCDAB89;
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ctx->state[2] = 0x98BADCFE;
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ctx->state[3] = 0x10325476;
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}
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/* Compute MD5 message digest for bytes read from STREAM. The
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resulting message digest number will be written into the 16 bytes
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beginning at RESBLOCK. */
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int
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md5_stream (stream, resblock)
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FILE *stream;
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void *resblock;
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void md5_process( md5_context *ctx, uint8 data[64] )
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{
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/* Important: BLOCKSIZE must be a multiple of 64. */
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#define BLOCKSIZE 4096
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struct md5_ctx ctx;
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char buffer[BLOCKSIZE + 72];
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size_t sum;
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uint32 X[16], A, B, C, D;
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/* Initialize the computation context. */
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md5_init_ctx (&ctx);
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GET_UINT32( X[0], data, 0 );
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GET_UINT32( X[1], data, 4 );
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GET_UINT32( X[2], data, 8 );
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GET_UINT32( X[3], data, 12 );
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GET_UINT32( X[4], data, 16 );
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GET_UINT32( X[5], data, 20 );
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GET_UINT32( X[6], data, 24 );
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GET_UINT32( X[7], data, 28 );
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GET_UINT32( X[8], data, 32 );
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GET_UINT32( X[9], data, 36 );
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GET_UINT32( X[10], data, 40 );
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GET_UINT32( X[11], data, 44 );
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GET_UINT32( X[12], data, 48 );
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GET_UINT32( X[13], data, 52 );
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GET_UINT32( X[14], data, 56 );
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GET_UINT32( X[15], data, 60 );
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/* Iterate over full file contents. */
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while (1)
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{
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/* We read the file in blocks of BLOCKSIZE bytes. One call of the
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computation function processes the whole buffer so that with the
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next round of the loop another block can be read. */
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size_t n;
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sum = 0;
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#define S(x,n) ((x << n) | ((x & 0xFFFFFFFF) >> (32 - n)))
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/* Read block. Take care for partial reads. */
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do
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{
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n = fread (buffer + sum, 1, BLOCKSIZE - sum, stream);
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sum += n;
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}
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while (sum < BLOCKSIZE && n != 0);
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if (n == 0 && ferror (stream))
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return 1;
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/* If end of file is reached, end the loop. */
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if (n == 0)
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break;
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/* Process buffer with BLOCKSIZE bytes. Note that
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BLOCKSIZE % 64 == 0
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*/
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md5_process_block (buffer, BLOCKSIZE, &ctx);
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}
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/* Add the last bytes if necessary. */
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if (sum > 0)
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md5_process_bytes (buffer, sum, &ctx);
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/* Construct result in desired memory. */
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md5_finish_ctx (&ctx, resblock);
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return 0;
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#define P(a,b,c,d,k,s,t) \
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{ \
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a += F(b,c,d) + X[k] + t; a = S(a,s) + b; \
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}
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/* Compute MD5 message digest for LEN bytes beginning at BUFFER. The
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result is always in little endian byte order, so that a byte-wise
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output yields to the wanted ASCII representation of the message
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digest. */
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void *
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md5_buffer (buffer, len, resblock)
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const char *buffer;
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size_t len;
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void *resblock;
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{
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struct md5_ctx ctx;
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A = ctx->state[0];
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B = ctx->state[1];
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C = ctx->state[2];
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D = ctx->state[3];
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/* Initialize the computation context. */
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md5_init_ctx (&ctx);
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#define F(x,y,z) (z ^ (x & (y ^ z)))
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/* Process whole buffer but last len % 64 bytes. */
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md5_process_bytes (buffer, len, &ctx);
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P( A, B, C, D, 0, 7, 0xD76AA478 );
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P( D, A, B, C, 1, 12, 0xE8C7B756 );
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P( C, D, A, B, 2, 17, 0x242070DB );
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P( B, C, D, A, 3, 22, 0xC1BDCEEE );
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P( A, B, C, D, 4, 7, 0xF57C0FAF );
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P( D, A, B, C, 5, 12, 0x4787C62A );
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P( C, D, A, B, 6, 17, 0xA8304613 );
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P( B, C, D, A, 7, 22, 0xFD469501 );
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P( A, B, C, D, 8, 7, 0x698098D8 );
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P( D, A, B, C, 9, 12, 0x8B44F7AF );
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P( C, D, A, B, 10, 17, 0xFFFF5BB1 );
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P( B, C, D, A, 11, 22, 0x895CD7BE );
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P( A, B, C, D, 12, 7, 0x6B901122 );
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P( D, A, B, C, 13, 12, 0xFD987193 );
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P( C, D, A, B, 14, 17, 0xA679438E );
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P( B, C, D, A, 15, 22, 0x49B40821 );
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/* Put result in desired memory area. */
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return md5_finish_ctx (&ctx, resblock);
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#undef F
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#define F(x,y,z) (y ^ (z & (x ^ y)))
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P( A, B, C, D, 1, 5, 0xF61E2562 );
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P( D, A, B, C, 6, 9, 0xC040B340 );
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P( C, D, A, B, 11, 14, 0x265E5A51 );
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P( B, C, D, A, 0, 20, 0xE9B6C7AA );
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P( A, B, C, D, 5, 5, 0xD62F105D );
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P( D, A, B, C, 10, 9, 0x02441453 );
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P( C, D, A, B, 15, 14, 0xD8A1E681 );
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P( B, C, D, A, 4, 20, 0xE7D3FBC8 );
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P( A, B, C, D, 9, 5, 0x21E1CDE6 );
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P( D, A, B, C, 14, 9, 0xC33707D6 );
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P( C, D, A, B, 3, 14, 0xF4D50D87 );
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P( B, C, D, A, 8, 20, 0x455A14ED );
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P( A, B, C, D, 13, 5, 0xA9E3E905 );
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P( D, A, B, C, 2, 9, 0xFCEFA3F8 );
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P( C, D, A, B, 7, 14, 0x676F02D9 );
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P( B, C, D, A, 12, 20, 0x8D2A4C8A );
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#undef F
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#define F(x,y,z) (x ^ y ^ z)
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P( A, B, C, D, 5, 4, 0xFFFA3942 );
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P( D, A, B, C, 8, 11, 0x8771F681 );
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P( C, D, A, B, 11, 16, 0x6D9D6122 );
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P( B, C, D, A, 14, 23, 0xFDE5380C );
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P( A, B, C, D, 1, 4, 0xA4BEEA44 );
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P( D, A, B, C, 4, 11, 0x4BDECFA9 );
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P( C, D, A, B, 7, 16, 0xF6BB4B60 );
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P( B, C, D, A, 10, 23, 0xBEBFBC70 );
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P( A, B, C, D, 13, 4, 0x289B7EC6 );
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P( D, A, B, C, 0, 11, 0xEAA127FA );
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P( C, D, A, B, 3, 16, 0xD4EF3085 );
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P( B, C, D, A, 6, 23, 0x04881D05 );
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P( A, B, C, D, 9, 4, 0xD9D4D039 );
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P( D, A, B, C, 12, 11, 0xE6DB99E5 );
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P( C, D, A, B, 15, 16, 0x1FA27CF8 );
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P( B, C, D, A, 2, 23, 0xC4AC5665 );
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#undef F
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#define F(x,y,z) (y ^ (x | ~z))
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P( A, B, C, D, 0, 6, 0xF4292244 );
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P( D, A, B, C, 7, 10, 0x432AFF97 );
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P( C, D, A, B, 14, 15, 0xAB9423A7 );
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P( B, C, D, A, 5, 21, 0xFC93A039 );
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P( A, B, C, D, 12, 6, 0x655B59C3 );
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P( D, A, B, C, 3, 10, 0x8F0CCC92 );
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P( C, D, A, B, 10, 15, 0xFFEFF47D );
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P( B, C, D, A, 1, 21, 0x85845DD1 );
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P( A, B, C, D, 8, 6, 0x6FA87E4F );
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P( D, A, B, C, 15, 10, 0xFE2CE6E0 );
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P( C, D, A, B, 6, 15, 0xA3014314 );
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P( B, C, D, A, 13, 21, 0x4E0811A1 );
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P( A, B, C, D, 4, 6, 0xF7537E82 );
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P( D, A, B, C, 11, 10, 0xBD3AF235 );
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P( C, D, A, B, 2, 15, 0x2AD7D2BB );
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P( B, C, D, A, 9, 21, 0xEB86D391 );
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#undef F
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ctx->state[0] += A;
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ctx->state[1] += B;
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ctx->state[2] += C;
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ctx->state[3] += D;
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}
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void
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md5_process_bytes (buffer, len, ctx)
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const void *buffer;
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size_t len;
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struct md5_ctx *ctx;
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void md5_update( md5_context *ctx, uint8 *input, uint32 length )
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{
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/* When we already have some bits in our internal buffer concatenate
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both inputs first. */
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if (ctx->buflen != 0)
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uint32 left, fill;
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if( ! length ) return;
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left = ctx->total[0] & 0x3F;
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fill = 64 - left;
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ctx->total[0] += length;
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ctx->total[0] &= 0xFFFFFFFF;
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if( ctx->total[0] < length )
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ctx->total[1]++;
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if( left && length >= fill )
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{
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size_t left_over = ctx->buflen;
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size_t add = 128 - left_over > len ? len : 128 - left_over;
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memcpy (&ctx->buffer[left_over], buffer, add);
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ctx->buflen += add;
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if (ctx->buflen > 64)
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{
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md5_process_block (ctx->buffer, ctx->buflen & ~63, ctx);
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ctx->buflen &= 63;
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/* The regions in the following copy operation cannot overlap. */
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memcpy (ctx->buffer, &ctx->buffer[(left_over + add) & ~63],
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ctx->buflen);
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memcpy( (void *) (ctx->buffer + left),
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(void *) input, fill );
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md5_process( ctx, ctx->buffer );
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length -= fill;
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input += fill;
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left = 0;
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}
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buffer = (const char *) buffer + add;
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len -= add;
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while( length >= 64 )
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{
|
||||
md5_process( ctx, input );
|
||||
length -= 64;
|
||||
input += 64;
|
||||
}
|
||||
|
||||
/* Process available complete blocks. */
|
||||
if (len >= 64)
|
||||
if( length )
|
||||
{
|
||||
#if !_STRING_ARCH_unaligned
|
||||
/* To check alignment gcc has an appropriate operator. Other
|
||||
compilers don't. */
|
||||
# if __GNUC__ >= 2
|
||||
# define UNALIGNED_P(p) (((md5_uintptr) p) % __alignof__ (md5_uint32) != 0)
|
||||
# else
|
||||
# define UNALIGNED_P(p) (((md5_uintptr) p) % sizeof (md5_uint32) != 0)
|
||||
# endif
|
||||
if (UNALIGNED_P (buffer))
|
||||
while (len > 64)
|
||||
{
|
||||
md5_process_block (memcpy (ctx->buffer, buffer, 64), 64, ctx);
|
||||
buffer = (const char *) buffer + 64;
|
||||
len -= 64;
|
||||
}
|
||||
else
|
||||
#endif
|
||||
{
|
||||
md5_process_block (buffer, len & ~63, ctx);
|
||||
buffer = (const char *) buffer + (len & ~63);
|
||||
len &= 63;
|
||||
}
|
||||
}
|
||||
|
||||
/* Move remaining bytes in internal buffer. */
|
||||
if (len > 0)
|
||||
{
|
||||
size_t left_over = ctx->buflen;
|
||||
|
||||
memcpy (&ctx->buffer[left_over], buffer, len);
|
||||
left_over += len;
|
||||
if (left_over >= 64)
|
||||
{
|
||||
md5_process_block (ctx->buffer, 64, ctx);
|
||||
left_over -= 64;
|
||||
memcpy (ctx->buffer, &ctx->buffer[64], left_over);
|
||||
}
|
||||
ctx->buflen = left_over;
|
||||
memcpy( (void *) (ctx->buffer + left),
|
||||
(void *) input, length );
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
/* These are the four functions used in the four steps of the MD5 algorithm
|
||||
and defined in the RFC 1321. The first function is a little bit optimized
|
||||
(as found in Colin Plumbs public domain implementation). */
|
||||
/* #define FF(b, c, d) ((b & c) | (~b & d)) */
|
||||
#define FF(b, c, d) (d ^ (b & (c ^ d)))
|
||||
#define FG(b, c, d) FF (d, b, c)
|
||||
#define FH(b, c, d) (b ^ c ^ d)
|
||||
#define FI(b, c, d) (c ^ (b | ~d))
|
||||
|
||||
/* Process LEN bytes of BUFFER, accumulating context into CTX.
|
||||
It is assumed that LEN % 64 == 0. */
|
||||
|
||||
void
|
||||
md5_process_block (buffer, len, ctx)
|
||||
const void *buffer;
|
||||
size_t len;
|
||||
struct md5_ctx *ctx;
|
||||
static uint8 md5_padding[64] =
|
||||
{
|
||||
md5_uint32 correct_words[16];
|
||||
const md5_uint32 *words = buffer;
|
||||
size_t nwords = len / sizeof (md5_uint32);
|
||||
const md5_uint32 *endp = words + nwords;
|
||||
md5_uint32 A = ctx->A;
|
||||
md5_uint32 B = ctx->B;
|
||||
md5_uint32 C = ctx->C;
|
||||
md5_uint32 D = ctx->D;
|
||||
0x80, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
|
||||
0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
|
||||
0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
|
||||
0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0
|
||||
};
|
||||
|
||||
/* First increment the byte count. RFC 1321 specifies the possible
|
||||
length of the file up to 2^64 bits. Here we only compute the
|
||||
number of bytes. Do a double word increment. */
|
||||
ctx->total[0] += len;
|
||||
if (ctx->total[0] < len)
|
||||
++ctx->total[1];
|
||||
void md5_finish( md5_context *ctx, uint8 digest[16] )
|
||||
{
|
||||
uint32 last, padn;
|
||||
uint32 high, low;
|
||||
uint8 msglen[8];
|
||||
|
||||
/* Process all bytes in the buffer with 64 bytes in each round of
|
||||
the loop. */
|
||||
while (words < endp)
|
||||
{
|
||||
md5_uint32 *cwp = correct_words;
|
||||
md5_uint32 A_save = A;
|
||||
md5_uint32 B_save = B;
|
||||
md5_uint32 C_save = C;
|
||||
md5_uint32 D_save = D;
|
||||
high = ( ctx->total[0] >> 29 )
|
||||
| ( ctx->total[1] << 3 );
|
||||
low = ( ctx->total[0] << 3 );
|
||||
|
||||
/* First round: using the given function, the context and a constant
|
||||
the next context is computed. Because the algorithms processing
|
||||
unit is a 32-bit word and it is determined to work on words in
|
||||
little endian byte order we perhaps have to change the byte order
|
||||
before the computation. To reduce the work for the next steps
|
||||
we store the swapped words in the array CORRECT_WORDS. */
|
||||
PUT_UINT32( low, msglen, 0 );
|
||||
PUT_UINT32( high, msglen, 4 );
|
||||
|
||||
#define OP(a, b, c, d, s, T) \
|
||||
do \
|
||||
{ \
|
||||
a += FF (b, c, d) + (*cwp++ = SWAP (*words)) + T; \
|
||||
++words; \
|
||||
CYCLIC (a, s); \
|
||||
a += b; \
|
||||
} \
|
||||
while (0)
|
||||
last = ctx->total[0] & 0x3F;
|
||||
padn = ( last < 56 ) ? ( 56 - last ) : ( 120 - last );
|
||||
|
||||
/* It is unfortunate that C does not provide an operator for
|
||||
cyclic rotation. Hope the C compiler is smart enough. */
|
||||
#define CYCLIC(w, s) (w = (w << s) | (w >> (32 - s)))
|
||||
md5_update( ctx, md5_padding, padn );
|
||||
md5_update( ctx, msglen, 8 );
|
||||
|
||||
/* Before we start, one word to the strange constants.
|
||||
They are defined in RFC 1321 as
|
||||
|
||||
T[i] = (int) (4294967296.0 * fabs (sin (i))), i=1..64
|
||||
*/
|
||||
|
||||
/* Round 1. */
|
||||
OP (A, B, C, D, 7, 0xd76aa478);
|
||||
OP (D, A, B, C, 12, 0xe8c7b756);
|
||||
OP (C, D, A, B, 17, 0x242070db);
|
||||
OP (B, C, D, A, 22, 0xc1bdceee);
|
||||
OP (A, B, C, D, 7, 0xf57c0faf);
|
||||
OP (D, A, B, C, 12, 0x4787c62a);
|
||||
OP (C, D, A, B, 17, 0xa8304613);
|
||||
OP (B, C, D, A, 22, 0xfd469501);
|
||||
OP (A, B, C, D, 7, 0x698098d8);
|
||||
OP (D, A, B, C, 12, 0x8b44f7af);
|
||||
OP (C, D, A, B, 17, 0xffff5bb1);
|
||||
OP (B, C, D, A, 22, 0x895cd7be);
|
||||
OP (A, B, C, D, 7, 0x6b901122);
|
||||
OP (D, A, B, C, 12, 0xfd987193);
|
||||
OP (C, D, A, B, 17, 0xa679438e);
|
||||
OP (B, C, D, A, 22, 0x49b40821);
|
||||
|
||||
/* For the second to fourth round we have the possibly swapped words
|
||||
in CORRECT_WORDS. Redefine the macro to take an additional first
|
||||
argument specifying the function to use. */
|
||||
#undef OP
|
||||
#define OP(f, a, b, c, d, k, s, T) \
|
||||
do \
|
||||
{ \
|
||||
a += f (b, c, d) + correct_words[k] + T; \
|
||||
CYCLIC (a, s); \
|
||||
a += b; \
|
||||
} \
|
||||
while (0)
|
||||
|
||||
/* Round 2. */
|
||||
OP (FG, A, B, C, D, 1, 5, 0xf61e2562);
|
||||
OP (FG, D, A, B, C, 6, 9, 0xc040b340);
|
||||
OP (FG, C, D, A, B, 11, 14, 0x265e5a51);
|
||||
OP (FG, B, C, D, A, 0, 20, 0xe9b6c7aa);
|
||||
OP (FG, A, B, C, D, 5, 5, 0xd62f105d);
|
||||
OP (FG, D, A, B, C, 10, 9, 0x02441453);
|
||||
OP (FG, C, D, A, B, 15, 14, 0xd8a1e681);
|
||||
OP (FG, B, C, D, A, 4, 20, 0xe7d3fbc8);
|
||||
OP (FG, A, B, C, D, 9, 5, 0x21e1cde6);
|
||||
OP (FG, D, A, B, C, 14, 9, 0xc33707d6);
|
||||
OP (FG, C, D, A, B, 3, 14, 0xf4d50d87);
|
||||
OP (FG, B, C, D, A, 8, 20, 0x455a14ed);
|
||||
OP (FG, A, B, C, D, 13, 5, 0xa9e3e905);
|
||||
OP (FG, D, A, B, C, 2, 9, 0xfcefa3f8);
|
||||
OP (FG, C, D, A, B, 7, 14, 0x676f02d9);
|
||||
OP (FG, B, C, D, A, 12, 20, 0x8d2a4c8a);
|
||||
|
||||
/* Round 3. */
|
||||
OP (FH, A, B, C, D, 5, 4, 0xfffa3942);
|
||||
OP (FH, D, A, B, C, 8, 11, 0x8771f681);
|
||||
OP (FH, C, D, A, B, 11, 16, 0x6d9d6122);
|
||||
OP (FH, B, C, D, A, 14, 23, 0xfde5380c);
|
||||
OP (FH, A, B, C, D, 1, 4, 0xa4beea44);
|
||||
OP (FH, D, A, B, C, 4, 11, 0x4bdecfa9);
|
||||
OP (FH, C, D, A, B, 7, 16, 0xf6bb4b60);
|
||||
OP (FH, B, C, D, A, 10, 23, 0xbebfbc70);
|
||||
OP (FH, A, B, C, D, 13, 4, 0x289b7ec6);
|
||||
OP (FH, D, A, B, C, 0, 11, 0xeaa127fa);
|
||||
OP (FH, C, D, A, B, 3, 16, 0xd4ef3085);
|
||||
OP (FH, B, C, D, A, 6, 23, 0x04881d05);
|
||||
OP (FH, A, B, C, D, 9, 4, 0xd9d4d039);
|
||||
OP (FH, D, A, B, C, 12, 11, 0xe6db99e5);
|
||||
OP (FH, C, D, A, B, 15, 16, 0x1fa27cf8);
|
||||
OP (FH, B, C, D, A, 2, 23, 0xc4ac5665);
|
||||
|
||||
/* Round 4. */
|
||||
OP (FI, A, B, C, D, 0, 6, 0xf4292244);
|
||||
OP (FI, D, A, B, C, 7, 10, 0x432aff97);
|
||||
OP (FI, C, D, A, B, 14, 15, 0xab9423a7);
|
||||
OP (FI, B, C, D, A, 5, 21, 0xfc93a039);
|
||||
OP (FI, A, B, C, D, 12, 6, 0x655b59c3);
|
||||
OP (FI, D, A, B, C, 3, 10, 0x8f0ccc92);
|
||||
OP (FI, C, D, A, B, 10, 15, 0xffeff47d);
|
||||
OP (FI, B, C, D, A, 1, 21, 0x85845dd1);
|
||||
OP (FI, A, B, C, D, 8, 6, 0x6fa87e4f);
|
||||
OP (FI, D, A, B, C, 15, 10, 0xfe2ce6e0);
|
||||
OP (FI, C, D, A, B, 6, 15, 0xa3014314);
|
||||
OP (FI, B, C, D, A, 13, 21, 0x4e0811a1);
|
||||
OP (FI, A, B, C, D, 4, 6, 0xf7537e82);
|
||||
OP (FI, D, A, B, C, 11, 10, 0xbd3af235);
|
||||
OP (FI, C, D, A, B, 2, 15, 0x2ad7d2bb);
|
||||
OP (FI, B, C, D, A, 9, 21, 0xeb86d391);
|
||||
|
||||
/* Add the starting values of the context. */
|
||||
A += A_save;
|
||||
B += B_save;
|
||||
C += C_save;
|
||||
D += D_save;
|
||||
}
|
||||
|
||||
/* Put checksum in context given as argument. */
|
||||
ctx->A = A;
|
||||
ctx->B = B;
|
||||
ctx->C = C;
|
||||
ctx->D = D;
|
||||
PUT_UINT32( ctx->state[0], digest, 0 );
|
||||
PUT_UINT32( ctx->state[1], digest, 4 );
|
||||
PUT_UINT32( ctx->state[2], digest, 8 );
|
||||
PUT_UINT32( ctx->state[3], digest, 12 );
|
||||
}
|
||||
|
||||
|
||||
|
|
|
|||
164
utils/md5.h
164
utils/md5.h
|
|
@ -1,148 +1,30 @@
|
|||
/* Declaration of functions and data types used for MD5 sum computing
|
||||
library functions.
|
||||
Copyright (C) 1995-1997,1999,2000,2001,2004,2005
|
||||
Free Software Foundation, Inc.
|
||||
This file is part of the GNU C Library.
|
||||
|
||||
The GNU C Library is free software; you can redistribute it and/or
|
||||
modify it under the terms of the GNU Lesser General Public
|
||||
License as published by the Free Software Foundation; either
|
||||
version 2.1 of the License, or (at your option) any later version.
|
||||
|
||||
The GNU C Library is distributed in the hope that it will be useful,
|
||||
but WITHOUT ANY WARRANTY; without even the implied warranty of
|
||||
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
|
||||
Lesser General Public License for more details.
|
||||
|
||||
You should have received a copy of the GNU Lesser General Public
|
||||
License along with the GNU C Library; if not, write to the Free
|
||||
Software Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA
|
||||
02111-1307 USA. */
|
||||
|
||||
#ifndef _MD5_H
|
||||
#define _MD5_H 1
|
||||
|
||||
#include <stdio.h>
|
||||
|
||||
#if defined HAVE_LIMITS_H || _LIBC
|
||||
# include <limits.h>
|
||||
#endif
|
||||
|
||||
#define MD5_DIGEST_SIZE 16
|
||||
#define MD5_BLOCK_SIZE 64
|
||||
|
||||
/* The following contortions are an attempt to use the C preprocessor
|
||||
to determine an unsigned integral type that is 32 bits wide. An
|
||||
alternative approach is to use autoconf's AC_CHECK_SIZEOF macro, but
|
||||
doing that would require that the configure script compile and *run*
|
||||
the resulting executable. Locally running cross-compiled executables
|
||||
is usually not possible. */
|
||||
|
||||
#ifdef _LIBC
|
||||
# include <stdint.h>
|
||||
typedef uint32_t md5_uint32;
|
||||
typedef uintptr_t md5_uintptr;
|
||||
#else
|
||||
# if defined __STDC__ && __STDC__
|
||||
# define UINT_MAX_32_BITS 4294967295U
|
||||
# else
|
||||
# define UINT_MAX_32_BITS 0xFFFFFFFF
|
||||
# endif
|
||||
|
||||
/* If UINT_MAX isn't defined, assume it's a 32-bit type.
|
||||
This should be valid for all systems GNU cares about because
|
||||
that doesn't include 16-bit systems, and only modern systems
|
||||
(that certainly have <limits.h>) have 64+-bit integral types. */
|
||||
|
||||
# ifndef UINT_MAX
|
||||
# define UINT_MAX UINT_MAX_32_BITS
|
||||
# endif
|
||||
|
||||
# if UINT_MAX == UINT_MAX_32_BITS
|
||||
typedef unsigned int md5_uint32;
|
||||
# else
|
||||
# if USHRT_MAX == UINT_MAX_32_BITS
|
||||
typedef unsigned short md5_uint32;
|
||||
# else
|
||||
# if ULONG_MAX == UINT_MAX_32_BITS
|
||||
typedef unsigned long md5_uint32;
|
||||
# else
|
||||
/* The following line is intended to evoke an error.
|
||||
Using #error is not portable enough. */
|
||||
"Cannot determine unsigned 32-bit data type."
|
||||
# endif
|
||||
# endif
|
||||
# endif
|
||||
/* We have to make a guess about the integer type equivalent in size
|
||||
to pointers which should always be correct. */
|
||||
typedef unsigned long int md5_uintptr;
|
||||
#endif
|
||||
|
||||
/* Structure to save state of computation between the single steps. */
|
||||
struct md5_ctx
|
||||
{
|
||||
md5_uint32 A;
|
||||
md5_uint32 B;
|
||||
md5_uint32 C;
|
||||
md5_uint32 D;
|
||||
|
||||
md5_uint32 total[2];
|
||||
md5_uint32 buflen;
|
||||
char buffer[128] __attribute__ ((__aligned__ (__alignof__ (md5_uint32))));
|
||||
};
|
||||
|
||||
/*
|
||||
* The following three functions are build up the low level used in
|
||||
* the functions `md5_stream' and `md5_buffer'.
|
||||
*/
|
||||
Christophe Devine
|
||||
c.devine@cr0.net
|
||||
http://www.cr0.net:8040/code/crypto/
|
||||
*/
|
||||
#ifndef _MD5_H
|
||||
#define _MD5_H
|
||||
|
||||
/* Initialize structure containing state of computation.
|
||||
(RFC 1321, 3.3: Step 3) */
|
||||
extern void __md5_init_ctx (struct md5_ctx *ctx) __THROW;
|
||||
#ifndef uint8
|
||||
#define uint8 unsigned char
|
||||
#endif
|
||||
|
||||
/* Starting with the result of former calls of this function (or the
|
||||
initialization function update the context for the next LEN bytes
|
||||
starting at BUFFER.
|
||||
It is necessary that LEN is a multiple of 64!!! */
|
||||
extern void __md5_process_block (const void *buffer, size_t len,
|
||||
struct md5_ctx *ctx) __THROW;
|
||||
#ifndef uint32
|
||||
#define uint32 unsigned long int
|
||||
#endif
|
||||
|
||||
/* Starting with the result of former calls of this function (or the
|
||||
initialization function update the context for the next LEN bytes
|
||||
starting at BUFFER.
|
||||
It is NOT required that LEN is a multiple of 64. */
|
||||
extern void __md5_process_bytes (const void *buffer, size_t len,
|
||||
struct md5_ctx *ctx) __THROW;
|
||||
typedef struct
|
||||
{
|
||||
uint32 total[2];
|
||||
uint32 state[4];
|
||||
uint8 buffer[64];
|
||||
}
|
||||
md5_context;
|
||||
|
||||
/* Process the remaining bytes in the buffer and put result from CTX
|
||||
in first 16 bytes following RESBUF. The result is always in little
|
||||
endian byte order, so that a byte-wise output yields to the wanted
|
||||
ASCII representation of the message digest.
|
||||
|
||||
IMPORTANT: On some systems it is required that RESBUF is correctly
|
||||
aligned for a 32 bits value. */
|
||||
extern void *__md5_finish_ctx (struct md5_ctx *ctx, void *resbuf) __THROW;
|
||||
|
||||
|
||||
/* Put result from CTX in first 16 bytes following RESBUF. The result is
|
||||
always in little endian byte order, so that a byte-wise output yields
|
||||
to the wanted ASCII representation of the message digest.
|
||||
|
||||
IMPORTANT: On some systems it is required that RESBUF is correctly
|
||||
aligned for a 32 bits value. */
|
||||
extern void *__md5_read_ctx (const struct md5_ctx *ctx, void *resbuf) __THROW;
|
||||
|
||||
|
||||
/* Compute MD5 message digest for bytes read from STREAM. The
|
||||
resulting message digest number will be written into the 16 bytes
|
||||
beginning at RESBLOCK. */
|
||||
extern int __md5_stream (FILE *stream, void *resblock) __THROW;
|
||||
|
||||
/* Compute MD5 message digest for LEN bytes beginning at BUFFER. The
|
||||
result is always in little endian byte order, so that a byte-wise
|
||||
output yields to the wanted ASCII representation of the message
|
||||
digest. */
|
||||
extern void *__md5_buffer (const char *buffer, size_t len,
|
||||
void *resblock) __THROW;
|
||||
void md5_starts( md5_context *ctx );
|
||||
void md5_update( md5_context *ctx, uint8 *input, uint32 length );
|
||||
void md5_finish( md5_context *ctx, uint8 digest[16] );
|
||||
|
||||
#endif /* md5.h */
|
||||
|
||||
|
|
|
|||
|
|
@ -22,6 +22,7 @@
|
|||
#include <openssl/ssl.h>
|
||||
#include <resolv.h> /* base64 encode/decode */
|
||||
#include "websocket.h"
|
||||
#include "md5.h"
|
||||
|
||||
const char server_handshake[] = "HTTP/1.1 101 Web Socket Protocol Handshake\r\n\
|
||||
Upgrade: WebSocket\r\n\
|
||||
|
|
@ -283,46 +284,38 @@ int parse_handshake(char *handshake, headers_t *headers) {
|
|||
return 1;
|
||||
}
|
||||
|
||||
static long int ws_compute_key(const char *value)
|
||||
{
|
||||
const char *pValue;
|
||||
long long int val = 0;
|
||||
int spaces = 0;
|
||||
|
||||
for (pValue = value; *pValue != '\0'; pValue++) {
|
||||
if (*pValue >= 48 && *pValue <= 57) {
|
||||
val = (val * 10) + (*pValue-48);
|
||||
} else if (*pValue == ' ') {
|
||||
spaces++;
|
||||
}
|
||||
}
|
||||
if (spaces == 0) {
|
||||
return 0;
|
||||
}
|
||||
|
||||
return val / spaces;
|
||||
}
|
||||
|
||||
int gen_md5(headers_t *headers, char *target) {
|
||||
unsigned int i, spaces1 = 0, spaces2 = 0;
|
||||
unsigned long num1 = 0, num2 = 0;
|
||||
unsigned char buf[17];
|
||||
for (i=0; i < strlen(headers->key1); i++) {
|
||||
if (headers->key1[i] == ' ') {
|
||||
spaces1 += 1;
|
||||
}
|
||||
if ((headers->key1[i] >= 48) && (headers->key1[i] <= 57)) {
|
||||
num1 = num1 * 10 + (headers->key1[i] - 48);
|
||||
}
|
||||
}
|
||||
num1 = num1 / spaces1;
|
||||
md5_context ctx;
|
||||
long int ckey1 = htonl(ws_compute_key(headers->key1));
|
||||
long int ckey2 = htonl(ws_compute_key(headers->key2));
|
||||
md5_starts(&ctx);
|
||||
|
||||
for (i=0; i < strlen(headers->key2); i++) {
|
||||
if (headers->key2[i] == ' ') {
|
||||
spaces2 += 1;
|
||||
}
|
||||
if ((headers->key2[i] >= 48) && (headers->key2[i] <= 57)) {
|
||||
num2 = num2 * 10 + (headers->key2[i] - 48);
|
||||
}
|
||||
}
|
||||
num2 = num2 / spaces2;
|
||||
md5_update(&ctx, (uint8 *)&ckey1, 4);
|
||||
md5_update(&ctx, (uint8 *)&ckey2, 4);
|
||||
md5_update(&ctx, (uint8 *)headers->key3, 8);
|
||||
|
||||
/* Pack it big-endian */
|
||||
buf[0] = (num1 & 0xff000000) >> 24;
|
||||
buf[1] = (num1 & 0xff0000) >> 16;
|
||||
buf[2] = (num1 & 0xff00) >> 8;
|
||||
buf[3] = num1 & 0xff;
|
||||
md5_finish(&ctx, target);
|
||||
|
||||
buf[4] = (num2 & 0xff000000) >> 24;
|
||||
buf[5] = (num2 & 0xff0000) >> 16;
|
||||
buf[6] = (num2 & 0xff00) >> 8;
|
||||
buf[7] = num2 & 0xff;
|
||||
|
||||
strncpy(buf+8, headers->key3, 8);
|
||||
buf[16] = '\0';
|
||||
|
||||
md5_buffer(buf, 16, target);
|
||||
target[16] = '\0';
|
||||
|
||||
return 1;
|
||||
}
|
||||
|
|
|
|||
Loading…
Reference in New Issue