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			159 lines
		
	
	
		
			5.6 KiB
		
	
	
	
		
			JavaScript
		
	
	
		
			Executable File
		
	
	
	
	
			
		
		
	
	
			159 lines
		
	
	
		
			5.6 KiB
		
	
	
	
		
			JavaScript
		
	
	
		
			Executable File
		
	
	
	
	
/* - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - -  */
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/*  SHA-1 implementation in JavaScript                  (c) Chris Veness 2002-2014 / MIT Licence  */
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/*                                                                                                */
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/*  - see http://csrc.nist.gov/groups/ST/toolkit/secure_hashing.html                              */
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/*        http://csrc.nist.gov/groups/ST/toolkit/examples.html                                    */
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/* - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - -  */
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/* jshint node:true *//* global define, escape, unescape */
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'use strict';
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/**
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 * SHA-1 hash function reference implementation.
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 *
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 * @namespace
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 */
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var Sha1 = {};
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/**
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 * Generates SHA-1 hash of string.
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 *
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 * @param   {string} msg - (Unicode) string to be hashed.
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 * @returns {string} Hash of msg as hex character string.
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 */
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Sha1.hash = function(msg) {
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    // convert string to UTF-8, as SHA only deals with byte-streams
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    msg = msg.utf8Encode();
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    // constants [§4.2.1]
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    var K = [ 0x5a827999, 0x6ed9eba1, 0x8f1bbcdc, 0xca62c1d6 ];
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    // PREPROCESSING
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    msg += String.fromCharCode(0x80);  // add trailing '1' bit (+ 0's padding) to string [§5.1.1]
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    // convert string msg into 512-bit/16-integer blocks arrays of ints [§5.2.1]
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    var l = msg.length/4 + 2; // length (in 32-bit integers) of msg + ‘1’ + appended length
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    var N = Math.ceil(l/16);  // number of 16-integer-blocks required to hold 'l' ints
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    var M = new Array(N);
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    for (var i=0; i<N; i++) {
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        M[i] = new Array(16);
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        for (var j=0; j<16; j++) {  // encode 4 chars per integer, big-endian encoding
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            M[i][j] = (msg.charCodeAt(i*64+j*4)<<24) | (msg.charCodeAt(i*64+j*4+1)<<16) |
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                (msg.charCodeAt(i*64+j*4+2)<<8) | (msg.charCodeAt(i*64+j*4+3));
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        } // note running off the end of msg is ok 'cos bitwise ops on NaN return 0
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    }
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    // add length (in bits) into final pair of 32-bit integers (big-endian) [§5.1.1]
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    // note: most significant word would be (len-1)*8 >>> 32, but since JS converts
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    // bitwise-op args to 32 bits, we need to simulate this by arithmetic operators
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    M[N-1][14] = ((msg.length-1)*8) / Math.pow(2, 32); M[N-1][14] = Math.floor(M[N-1][14]);
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    M[N-1][15] = ((msg.length-1)*8) & 0xffffffff;
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    // set initial hash value [§5.3.1]
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    var H0 = 0x67452301;
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    var H1 = 0xefcdab89;
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    var H2 = 0x98badcfe;
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    var H3 = 0x10325476;
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    var H4 = 0xc3d2e1f0;
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    // HASH COMPUTATION [§6.1.2]
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    var W = new Array(80); var a, b, c, d, e;
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    for (var i=0; i<N; i++) {
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        // 1 - prepare message schedule 'W'
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        for (var t=0;  t<16; t++) W[t] = M[i][t];
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        for (var t=16; t<80; t++) W[t] = Sha1.ROTL(W[t-3] ^ W[t-8] ^ W[t-14] ^ W[t-16], 1);
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        // 2 - initialise five working variables a, b, c, d, e with previous hash value
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        a = H0; b = H1; c = H2; d = H3; e = H4;
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        // 3 - main loop
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        for (var t=0; t<80; t++) {
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            var s = Math.floor(t/20); // seq for blocks of 'f' functions and 'K' constants
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            var T = (Sha1.ROTL(a,5) + Sha1.f(s,b,c,d) + e + K[s] + W[t]) & 0xffffffff;
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            e = d;
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            d = c;
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            c = Sha1.ROTL(b, 30);
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            b = a;
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            a = T;
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        }
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        // 4 - compute the new intermediate hash value (note 'addition modulo 2^32')
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        H0 = (H0+a) & 0xffffffff;
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        H1 = (H1+b) & 0xffffffff;
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        H2 = (H2+c) & 0xffffffff;
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        H3 = (H3+d) & 0xffffffff;
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        H4 = (H4+e) & 0xffffffff;
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    }
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    return Sha1.toHexStr(H0) + Sha1.toHexStr(H1) + Sha1.toHexStr(H2) +
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           Sha1.toHexStr(H3) + Sha1.toHexStr(H4);
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};
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/**
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 * Function 'f' [§4.1.1].
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 * @private
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 */
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Sha1.f = function(s, x, y, z)  {
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    switch (s) {
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        case 0: return (x & y) ^ (~x & z);           // Ch()
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        case 1: return  x ^ y  ^  z;                 // Parity()
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        case 2: return (x & y) ^ (x & z) ^ (y & z);  // Maj()
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        case 3: return  x ^ y  ^  z;                 // Parity()
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    }
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};
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/**
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 * Rotates left (circular left shift) value x by n positions [§3.2.5].
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 * @private
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 */
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Sha1.ROTL = function(x, n) {
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    return (x<<n) | (x>>>(32-n));
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};
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/**
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 * Hexadecimal representation of a number.
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 * @private
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 */
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Sha1.toHexStr = function(n) {
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    // note can't use toString(16) as it is implementation-dependant,
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    // and in IE returns signed numbers when used on full words
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    var s="", v;
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    for (var i=7; i>=0; i--) { v = (n>>>(i*4)) & 0xf; s += v.toString(16); }
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    return s;
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};
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/* - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - -  */
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/** Extend String object with method to encode multi-byte string to utf8
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 *  - monsur.hossa.in/2012/07/20/utf-8-in-javascript.html */
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if (typeof String.prototype.utf8Encode == 'undefined') {
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    String.prototype.utf8Encode = function() {
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        return unescape( encodeURIComponent( this ) );
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    };
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}
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/** Extend String object with method to decode utf8 string to multi-byte */
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if (typeof String.prototype.utf8Decode == 'undefined') {
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    String.prototype.utf8Decode = function() {
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        try {
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            return decodeURIComponent( escape( this ) );
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        } catch (e) {
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            return this; // invalid UTF-8? return as-is
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        }
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    };
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}
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/* - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - -  */
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if (typeof module != 'undefined' && module.exports) module.exports = Sha1; // CommonJs export
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if (typeof define == 'function' && define.amd) define([], function() { return Sha1; }); // AMD
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