www.pudn.com > mysee.zip > md5.cpp


// MD5.CC - source code for the C++/object oriented translation and  
//          modification of MD5. 
 
// Translation and modification (c) 1995 by Mordechai T. Abzug  
 
// This translation/ modification is provided "as is," without express or  
// implied warranty of any kind. 
 
// The translator/ modifier does not claim (1) that MD5 will do what you think  
// it does; (2) that this translation/ modification is accurate; or (3) that  
// this software is "merchantible."  (Language for this disclaimer partially  
// copied from the disclaimer below). 
 
/* based on: 
 
   MD5C.C - RSA Data Security, Inc., MD5 message-digest algorithm 
   MDDRIVER.C - test driver for MD2, MD4 and MD5 
 
 
   Copyright (C) 1991-2, RSA Data Security, Inc. Created 1991. All 
rights reserved. 
 
License to copy and use this software is granted provided that it 
is identified as the "RSA Data Security, Inc. MD5 Message-Digest 
Algorithm" in all material mentioning or referencing this software 
or this function. 
 
License is also granted to make and use derivative works provided 
that such works are identified as "derived from the RSA Data 
Security, Inc. MD5 Message-Digest Algorithm" in all material 
mentioning or referencing the derived work. 
 
RSA Data Security, Inc. makes no representations concerning either 
the merchantability of this software or the suitability of this 
software for any particular purpose. It is provided "as is" 
without express or implied warranty of any kind. 
 
These notices must be retained in any copies of any part of this 
documentation and/or software. 
 
 */ 
 
 
 
 
 
 
#include "stdafx.h" 
#include  
#include "md5.h" 
 
// MD5 simple initialization method 
 
MD5::MD5(){ 
 
  init(); 
 
} 
 
 
 
 
// MD5 block update operation. Continues an MD5 message-digest 
// operation, processing another message block, and updating the 
// context. 
 
void MD5::update (const uint1 *input, uint4 input_length) { 
 
  uint4 input_index, buffer_index; 
  uint4 buffer_space;                // how much space is left in buffer 
 
  if (finalized){  // so we can't update! 
    cerr << "MD5::update:  Can't update a finalized digest!" << endl; 
    return; 
  } 
 
  // Compute number of bytes mod 64 
  buffer_index = (unsigned int)((count[0] >> 3) & 0x3F); 
 
  // Update number of bits 
  if (  (count[0] += ((uint4) input_length << 3))<((uint4) input_length << 3) ) 
    count[1]++; 
 
  count[1] += ((uint4)input_length >> 29); 
 
 
  buffer_space = 64 - buffer_index;  // how much space is left in buffer 
 
  // Transform as many times as possible. 
  if (input_length >= buffer_space) { // ie. we have enough to fill the buffer 
    // fill the rest of the buffer and transform 
    memcpy (buffer + buffer_index, input, buffer_space); 
    transform (buffer); 
 
    // now, transform each 64-byte piece of the input, bypassing the buffer 
    for (input_index = buffer_space; input_index + 63 < input_length;  
	 input_index += 64) 
      transform (input+input_index); 
 
    buffer_index = 0;  // so we can buffer remaining 
  } 
  else 
    input_index=0;     // so we can buffer the whole input 
 
 
  // and here we do the buffering: 
  memcpy(buffer+buffer_index, input+input_index, input_length-input_index); 
} 
 
 
 
// MD5 update for files. 
// Like above, except that it works on files (and uses above as a primitive.) 
 
void MD5::update(FILE *file){ 
 
  unsigned char buffer[1024]; 
  int len; 
 
  while (len=fread(buffer, 1, 1024, file)) 
    update(buffer, len); 
 
  fclose (file); 
 
} 
 
 
 
 
// MD5 finalization. Ends an MD5 message-digest operation, writing the 
// the message digest and zeroizing the context. 
 
 
void MD5::finalize (){ 
 
  unsigned char bits[8]; 
  unsigned int index, padLen; 
  static uint1 PADDING[64]={ 
    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 
    }; 
 
  if (finalized){ 
    cerr << "MD5::finalize:  Already finalized this digest!" << endl; 
    return; 
  } 
 
  // Save number of bits 
  encode (bits, count, 8); 
 
  // Pad out to 56 mod 64. 
  index = (uint4) ((count[0] >> 3) & 0x3f); 
  padLen = (index < 56) ? (56 - index) : (120 - index); 
  update (PADDING, padLen); 
 
  // Append length (before padding) 
  update (bits, 8); 
 
  // Store state in digest 
  encode (digest, state, 16); 
 
  // Zeroize sensitive information 
  memset (buffer, 0, sizeof(*buffer)); 
 
  finalized=1; 
 
} 
 
 
 
 
MD5::MD5(FILE *file){ 
 
  init();  // must be called be all constructors 
  update(file); 
  finalize (); 
} 
 
MD5::MD5(const unsigned char* string, unsigned int len) { 
  init(); 
  update(string, len); 
  finalize(); 
} 
 
 
unsigned char *MD5::raw_digest(){ 
 
  uint1 *s = new uint1[16]; 
 
  if (!finalized){ 
    cerr << "MD5::raw_digest:  Can't get digest if you haven't "<< 
      "finalized the digest!" <> 8) & 0xff); 
    output[j+2] = (uint1) ((input[i] >> 16) & 0xff); 
    output[j+3] = (uint1) ((input[i] >> 24) & 0xff); 
  } 
} 
 
 
 
 
// Decodes input (unsigned char) into output (UINT4). Assumes len is 
// a multiple of 4. 
void MD5::decode (uint4 *output, const uint1 *input, uint4 len){ 
 
  unsigned int i, j; 
 
  for (i = 0, j = 0; j < len; i++, j += 4) 
    output[i] = ((uint4)input[j]) | (((uint4)input[j+1]) << 8) | 
      (((uint4)input[j+2]) << 16) | (((uint4)input[j+3]) << 24); 
} 
 
 
 
 
 
// Note: Replace "for loop" with standard memcpy if possible. 
void MD5::memcpy (uint1 *output, const uint1 *input, uint4 len){ 
 
  unsigned int i; 
 
  for (i = 0; i < len; i++) 
    output[i] = input[i]; 
} 
 
 
 
// Note: Replace "for loop" with standard memset if possible. 
void MD5::memset (uint1 *output, uint1 value, uint4 len){ 
 
  unsigned int i; 
 
  for (i = 0; i < len; i++) 
    output[i] = value; 
} 
 
 
 
// ROTATE_LEFT rotates x left n bits. 
 
inline unsigned int MD5::rotate_left  (uint4 x, uint4 n){ 
  return (x << n) | (x >> (32-n))  ; 
} 
 
 
 
 
// F, G, H and I are basic MD5 functions. 
 
inline unsigned int MD5::F            (uint4 x, uint4 y, uint4 z){ 
  return (x & y) | (~x & z); 
} 
 
inline unsigned int MD5::G            (uint4 x, uint4 y, uint4 z){ 
  return (x & z) | (y & ~z); 
} 
 
inline unsigned int MD5::H            (uint4 x, uint4 y, uint4 z){ 
  return x ^ y ^ z; 
} 
 
inline unsigned int MD5::I            (uint4 x, uint4 y, uint4 z){ 
  return y ^ (x | ~z); 
} 
 
 
 
// FF, GG, HH, and II transformations for rounds 1, 2, 3, and 4. 
// Rotation is separate from addition to prevent recomputation. 
 
 
inline void MD5::FF(uint4& a, uint4 b, uint4 c, uint4 d, uint4 x,  
		    uint4  s, uint4 ac){ 
 a += F(b, c, d) + x + ac; 
 a = rotate_left (a, s) +b; 
} 
 
inline void MD5::GG(uint4& a, uint4 b, uint4 c, uint4 d, uint4 x,  
		    uint4 s, uint4 ac){ 
 a += G(b, c, d) + x + ac; 
 a = rotate_left (a, s) +b; 
} 
 
inline void MD5::HH(uint4& a, uint4 b, uint4 c, uint4 d, uint4 x,  
		    uint4 s, uint4 ac){ 
 a += H(b, c, d) + x + ac; 
 a = rotate_left (a, s) +b; 
} 
 
inline void MD5::II(uint4& a, uint4 b, uint4 c, uint4 d, uint4 x,  
			     uint4 s, uint4 ac){ 
 a += I(b, c, d) + x + ac; 
 a = rotate_left (a, s) +b; 
}