Chris@76: /* Chris@76: * A JavaScript implementation of the Secure Hash Algorithm, SHA-1, as defined Chris@76: * in FIPS PUB 180-1 Chris@76: * Version 2.1 Copyright Paul Johnston 2000 - 2002. Chris@76: * Other contributors: Greg Holt, Andrew Kepert, Ydnar, Lostinet Chris@76: * Distributed under the BSD License Chris@76: * See http://pajhome.org.uk/crypt/md5 for details. Chris@76: */ Chris@76: Chris@76: /* Chris@76: * Configurable variables. You may need to tweak these to be compatible with Chris@76: * the server-side, but the defaults work in most cases. Chris@76: */ Chris@76: var hexcase = 0; /* hex output format. 0 - lowercase; 1 - uppercase */ Chris@76: var b64pad = ""; /* base-64 pad character. "=" for strict RFC compliance */ Chris@76: var chrsz = 8; /* bits per input character. 8 - ASCII; 16 - Unicode */ Chris@76: Chris@76: /* Chris@76: * These are the functions you'll usually want to call Chris@76: * They take string arguments and return either hex or base-64 encoded strings Chris@76: */ Chris@76: function hex_sha1(s){return binb2hex(core_sha1(str2binb(s),s.length * chrsz));} Chris@76: function b64_sha1(s){return binb2b64(core_sha1(str2binb(s),s.length * chrsz));} Chris@76: function str_sha1(s){return binb2str(core_sha1(str2binb(s),s.length * chrsz));} Chris@76: function hex_hmac_sha1(key, data){ return binb2hex(core_hmac_sha1(key, data));} Chris@76: function b64_hmac_sha1(key, data){ return binb2b64(core_hmac_sha1(key, data));} Chris@76: function str_hmac_sha1(key, data){ return binb2str(core_hmac_sha1(key, data));} Chris@76: Chris@76: /* Chris@76: * Perform a simple self-test to see if the VM is working Chris@76: */ Chris@76: function sha1_vm_test() Chris@76: { Chris@76: return hex_sha1("abc") == "a9993e364706816aba3e25717850c26c9cd0d89d"; Chris@76: } Chris@76: Chris@76: /* Chris@76: * Calculate the SHA-1 of an array of big-endian words, and a bit length Chris@76: */ Chris@76: function core_sha1(x, len) Chris@76: { Chris@76: /* append padding */ Chris@76: x[len >> 5] |= 0x80 << (24 - len % 32); Chris@76: x[((len + 64 >> 9) << 4) + 15] = len; Chris@76: Chris@76: var w = Array(80); Chris@76: var a = 1732584193; Chris@76: var b = -271733879; Chris@76: var c = -1732584194; Chris@76: var d = 271733878; Chris@76: var e = -1009589776; Chris@76: Chris@76: for (var i = 0; i < x.length; i += 16) Chris@76: { Chris@76: var olda = a; Chris@76: var oldb = b; Chris@76: var oldc = c; Chris@76: var oldd = d; Chris@76: var olde = e; Chris@76: Chris@76: for (var j = 0; j < 80; j++) Chris@76: { Chris@76: if (j < 16) w[j] = x[i + j]; Chris@76: else w[j] = rol(w[j-3] ^ w[j-8] ^ w[j-14] ^ w[j-16], 1); Chris@76: var t = safe_add(safe_add(rol(a, 5), sha1_ft(j, b, c, d)), safe_add(safe_add(e, w[j]), sha1_kt(j))); Chris@76: e = d; Chris@76: d = c; Chris@76: c = rol(b, 30); Chris@76: b = a; Chris@76: a = t; Chris@76: } Chris@76: Chris@76: a = safe_add(a, olda); Chris@76: b = safe_add(b, oldb); Chris@76: c = safe_add(c, oldc); Chris@76: d = safe_add(d, oldd); Chris@76: e = safe_add(e, olde); Chris@76: } Chris@76: return Array(a, b, c, d, e); Chris@76: } Chris@76: Chris@76: /* Chris@76: * Perform the appropriate triplet combination function for the current Chris@76: * iteration Chris@76: */ Chris@76: function sha1_ft(t, b, c, d) Chris@76: { Chris@76: if (t < 20) return (b & c) | ((~b) & d); Chris@76: if (t < 40) return b ^ c ^ d; Chris@76: if (t < 60) return (b & c) | (b & d) | (c & d); Chris@76: return b ^ c ^ d; Chris@76: } Chris@76: Chris@76: /* Chris@76: * Determine the appropriate additive constant for the current iteration Chris@76: */ Chris@76: function sha1_kt(t) Chris@76: { Chris@76: return (t < 20) ? 1518500249 : (t < 40) ? 1859775393 : Chris@76: (t < 60) ? -1894007588 : -899497514; Chris@76: } Chris@76: Chris@76: /* Chris@76: * Calculate the HMAC-SHA1 of a key and some data Chris@76: */ Chris@76: function core_hmac_sha1(key, data) Chris@76: { Chris@76: var bkey = str2binb(key); Chris@76: if (bkey.length > 16) bkey = core_sha1(bkey, key.length * chrsz); Chris@76: Chris@76: var ipad = Array(16), opad = Array(16); Chris@76: for (var i = 0; i < 16; i++) Chris@76: { Chris@76: ipad[i] = bkey[i] ^ 0x36363636; Chris@76: opad[i] = bkey[i] ^ 0x5C5C5C5C; Chris@76: } Chris@76: Chris@76: var hash = core_sha1(ipad.concat(str2binb(data)), 512 + data.length * chrsz); Chris@76: return core_sha1(opad.concat(hash), 512 + 160); Chris@76: } Chris@76: Chris@76: /* Chris@76: * Add integers, wrapping at 2^32. This uses 16-bit operations internally Chris@76: * to work around bugs in some JS interpreters. Chris@76: */ Chris@76: function safe_add(x, y) Chris@76: { Chris@76: var lsw = (x & 0xFFFF) + (y & 0xFFFF); Chris@76: var msw = (x >> 16) + (y >> 16) + (lsw >> 16); Chris@76: return (msw << 16) | (lsw & 0xFFFF); Chris@76: } Chris@76: Chris@76: /* Chris@76: * Bitwise rotate a 32-bit number to the left. Chris@76: */ Chris@76: function rol(num, cnt) Chris@76: { Chris@76: return (num << cnt) | (num >>> (32 - cnt)); Chris@76: } Chris@76: Chris@76: /* Chris@76: * Convert an 8-bit or 16-bit string to an array of big-endian words Chris@76: * In 8-bit function, characters >255 have their hi-byte silently ignored. Chris@76: */ Chris@76: function str2binb(str) Chris@76: { Chris@76: var bin = Array(); Chris@76: Chris@76: for (var i = 0, n = 1 + ((str.length * chrsz) >> 5); i < n; i++) Chris@76: bin[i] = 0; Chris@76: Chris@76: var mask = (1 << chrsz) - 1; Chris@76: for (var i = 0; i < str.length * chrsz; i += chrsz) Chris@76: bin[i >> 5] |= (str.charCodeAt(i / chrsz) & mask) << (24 - i % 32); Chris@76: return bin; Chris@76: } Chris@76: Chris@76: /* Chris@76: * Convert an array of big-endian words to a string Chris@76: */ Chris@76: function binb2str(bin) Chris@76: { Chris@76: var str = ""; Chris@76: var mask = (1 << chrsz) - 1; Chris@76: for (var i = 0; i < bin.length * 32; i += chrsz) Chris@76: str += String.fromCharCode((bin[i>>5] >>> (24 - i%32)) & mask); Chris@76: return str; Chris@76: } Chris@76: Chris@76: /* Chris@76: * Convert an array of big-endian words to a hex string. Chris@76: */ Chris@76: function binb2hex(binarray) Chris@76: { Chris@76: var hex_tab = hexcase ? "0123456789ABCDEF" : "0123456789abcdef"; Chris@76: var str = ""; Chris@76: for (var i = 0; i < binarray.length * 4; i++) Chris@76: { Chris@76: str += hex_tab.charAt((binarray[i>>2] >> ((3 - i%4)*8+4)) & 0xF) + Chris@76: hex_tab.charAt((binarray[i>>2] >> ((3 - i%4)*8 )) & 0xF); Chris@76: } Chris@76: return str; Chris@76: } Chris@76: Chris@76: /* Chris@76: * Convert an array of big-endian words to a base-64 string Chris@76: */ Chris@76: function binb2b64(binarray) Chris@76: { Chris@76: var tab = "ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz0123456789+/"; Chris@76: var str = ""; Chris@76: for (var i = 0; i < binarray.length * 4; i += 3) Chris@76: { Chris@76: var triplet = (((binarray[i >> 2] >> 8 * (3 - i %4)) & 0xFF) << 16) Chris@76: | (((binarray[i+1 >> 2] >> 8 * (3 - (i+1)%4)) & 0xFF) << 8 ) Chris@76: | ((binarray[i+2 >> 2] >> 8 * (3 - (i+2)%4)) & 0xFF); Chris@76: for (var j = 0; j < 4; j++) Chris@76: { Chris@76: if (i * 8 + j * 6 > binarray.length * 32) str += b64pad; Chris@76: else str += tab.charAt((triplet >> 6*(3-j)) & 0x3F); Chris@76: } Chris@76: } Chris@76: return str; Chris@76: } Chris@76: