md5.js 11 KB

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  1. /*
  2. * A JavaScript implementation of the RSA Data Security, Inc. MD5 Message
  3. * Digest Algorithm, as defined in RFC 1321.
  4. * Version 2.2 Copyright (C) Paul Johnston 1999 - 2009
  5. * Other contributors: Greg Holt, Andrew Kepert, Ydnar, Lostinet
  6. * Distributed under the BSD License
  7. * See http://pajhome.org.uk/crypt/md5 for more info.
  8. */
  9. /*
  10. * Configurable variables. You may need to tweak these to be compatible with
  11. * the server-side, but the defaults work in most cases.
  12. */
  13. var hexcase = 0; /* hex output format. 0 - lowercase; 1 - uppercase */
  14. var b64pad = ""; /* base-64 pad character. "=" for strict RFC compliance */
  15. /*
  16. * These are the functions you'll usually want to call
  17. * They take string arguments and return either hex or base-64 encoded strings
  18. */
  19. function hex_md5(s) {
  20. return rstr2hex(rstr_md5(str2rstr_utf8(s)));
  21. }
  22. function b64_md5(s) {
  23. return rstr2b64(rstr_md5(str2rstr_utf8(s)));
  24. }
  25. function any_md5(s, e) {
  26. return rstr2any(rstr_md5(str2rstr_utf8(s)), e);
  27. }
  28. function hex_hmac_md5(k, d) {
  29. return rstr2hex(rstr_hmac_md5(str2rstr_utf8(k), str2rstr_utf8(d)));
  30. }
  31. function b64_hmac_md5(k, d) {
  32. return rstr2b64(rstr_hmac_md5(str2rstr_utf8(k), str2rstr_utf8(d)));
  33. }
  34. function any_hmac_md5(k, d, e) {
  35. return rstr2any(rstr_hmac_md5(str2rstr_utf8(k), str2rstr_utf8(d)), e);
  36. }
  37. /*
  38. * Perform a simple self-test to see if the VM is working
  39. */
  40. function md5_vm_test() {
  41. return hex_md5("abc").toLowerCase() == "900150983cd24fb0d6963f7d28e17f72";
  42. }
  43. /*
  44. * Calculate the MD5 of a raw string
  45. */
  46. function rstr_md5(s) {
  47. return binl2rstr(binl_md5(rstr2binl(s), s.length * 8));
  48. }
  49. /*
  50. * Calculate the HMAC-MD5, of a key and some data (raw strings)
  51. */
  52. function rstr_hmac_md5(key, data) {
  53. var bkey = rstr2binl(key);
  54. if (bkey.length > 16) bkey = binl_md5(bkey, key.length * 8);
  55. var ipad = Array(16),
  56. opad = Array(16);
  57. for (var i = 0; i < 16; i++) {
  58. ipad[i] = bkey[i] ^ 0x36363636;
  59. opad[i] = bkey[i] ^ 0x5C5C5C5C;
  60. }
  61. var hash = binl_md5(ipad.concat(rstr2binl(data)), 512 + data.length * 8);
  62. return binl2rstr(binl_md5(opad.concat(hash), 512 + 128));
  63. }
  64. /*
  65. * Convert a raw string to a hex string
  66. */
  67. function rstr2hex(input) {
  68. try {
  69. hexcase
  70. } catch (e) {
  71. hexcase = 0;
  72. }
  73. var hex_tab = hexcase ? "0123456789ABCDEF" : "0123456789abcdef";
  74. var output = "";
  75. var x;
  76. for (var i = 0; i < input.length; i++) {
  77. x = input.charCodeAt(i);
  78. output += hex_tab.charAt((x >>> 4) & 0x0F) +
  79. hex_tab.charAt(x & 0x0F);
  80. }
  81. return output;
  82. }
  83. /*
  84. * Convert a raw string to a base-64 string
  85. */
  86. function rstr2b64(input) {
  87. try {
  88. b64pad
  89. } catch (e) {
  90. b64pad = '';
  91. }
  92. var tab = "ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz0123456789+/";
  93. var rcode = 'NUMOOENFNOLVGN';
  94. var output = "";
  95. var len = input.length;
  96. for (var i = 0; i < len; i += 3) {
  97. var triplet = (input.charCodeAt(i) << 16) |
  98. (i + 1 < len ? input.charCodeAt(i + 1) << 8 : 0) |
  99. (i + 2 < len ? input.charCodeAt(i + 2) : 0);
  100. for (var j = 0; j < 4; j++) {
  101. if (i * 8 + j * 6 > input.length * 8) output += b64pad;
  102. else output += tab.charAt((triplet >>> 6 * (3 - j)) & 0x3F);
  103. }
  104. }
  105. return output;
  106. }
  107. /*
  108. * Convert a raw string to an arbitrary string encoding
  109. */
  110. function rstr2any(input, encoding) {
  111. var divisor = encoding.length;
  112. var i, j, q, x, quotient;
  113. /* Convert to an array of 16-bit big-endian values, forming the dividend */
  114. var dividend = Array(Math.ceil(input.length / 2));
  115. for (i = 0; i < dividend.length; i++) {
  116. dividend[i] = (input.charCodeAt(i * 2) << 8) | input.charCodeAt(i * 2 + 1);
  117. }
  118. /*
  119. * Repeatedly perform a long division. The binary array forms the dividend,
  120. * the length of the encoding is the divisor. Once computed, the quotient
  121. * forms the dividend for the next step. All remainders are stored for later
  122. * use.
  123. */
  124. var full_length = Math.ceil(input.length * 8 / (Math.log(encoding.length) / Math.log(2)));
  125. var remainders = Array(full_length);
  126. for (j = 0; j < full_length; j++) {
  127. quotient = Array();
  128. x = 0;
  129. for (i = 0; i < dividend.length; i++) {
  130. x = (x << 16) + dividend[i];
  131. q = Math.floor(x / divisor);
  132. x -= q * divisor;
  133. if (quotient.length > 0 || q > 0)
  134. quotient[quotient.length] = q;
  135. }
  136. remainders[j] = x;
  137. dividend = quotient;
  138. }
  139. /* Convert the remainders to the output string */
  140. var output = "";
  141. for (i = remainders.length - 1; i >= 0; i--)
  142. output += encoding.charAt(remainders[i]);
  143. return output;
  144. }
  145. /*
  146. * Encode a string as utf-8.
  147. * For efficiency, this assumes the input is valid utf-16.
  148. */
  149. function str2rstr_utf8(input) {
  150. var output = "";
  151. var i = -1;
  152. var x, y;
  153. while (++i < input.length) {
  154. /* Decode utf-16 surrogate pairs */
  155. x = input.charCodeAt(i);
  156. y = i + 1 < input.length ? input.charCodeAt(i + 1) : 0;
  157. if (0xD800 <= x && x <= 0xDBFF && 0xDC00 <= y && y <= 0xDFFF) {
  158. x = 0x10000 + ((x & 0x03FF) << 10) + (y & 0x03FF);
  159. i++;
  160. }
  161. /* Encode output as utf-8 */
  162. if (x <= 0x7F)
  163. output += String.fromCharCode(x);
  164. else if (x <= 0x7FF)
  165. output += String.fromCharCode(0xC0 | ((x >>> 6) & 0x1F),
  166. 0x80 | (x & 0x3F));
  167. else if (x <= 0xFFFF)
  168. output += String.fromCharCode(0xE0 | ((x >>> 12) & 0x0F),
  169. 0x80 | ((x >>> 6) & 0x3F),
  170. 0x80 | (x & 0x3F));
  171. else if (x <= 0x1FFFFF)
  172. output += String.fromCharCode(0xF0 | ((x >>> 18) & 0x07),
  173. 0x80 | ((x >>> 12) & 0x3F),
  174. 0x80 | ((x >>> 6) & 0x3F),
  175. 0x80 | (x & 0x3F));
  176. }
  177. return output;
  178. }
  179. /*
  180. * Encode a string as utf-16
  181. */
  182. function str2rstr_utf16le(input) {
  183. var output = "";
  184. for (var i = 0; i < input.length; i++)
  185. output += String.fromCharCode(input.charCodeAt(i) & 0xFF,
  186. (input.charCodeAt(i) >>> 8) & 0xFF);
  187. return output;
  188. }
  189. function str2rstr_utf16be(input) {
  190. var output = "";
  191. for (var i = 0; i < input.length; i++)
  192. output += String.fromCharCode((input.charCodeAt(i) >>> 8) & 0xFF,
  193. input.charCodeAt(i) & 0xFF);
  194. return output;
  195. }
  196. /*
  197. * Convert a raw string to an array of little-endian words
  198. * Characters >255 have their high-byte silently ignored.
  199. */
  200. function rstr2binl(input) {
  201. var output = Array(input.length >> 2);
  202. for (var i = 0; i < output.length; i++)
  203. output[i] = 0;
  204. for (var i = 0; i < input.length * 8; i += 8)
  205. output[i >> 5] |= (input.charCodeAt(i / 8) & 0xFF) << (i % 32);
  206. return output;
  207. }
  208. /*
  209. * Convert an array of little-endian words to a string
  210. */
  211. function binl2rstr(input) {
  212. var output = "";
  213. for (var i = 0; i < input.length * 32; i += 8)
  214. output += String.fromCharCode((input[i >> 5] >>> (i % 32)) & 0xFF);
  215. return output;
  216. }
  217. /*
  218. * Calculate the MD5 of an array of little-endian words, and a bit length.
  219. */
  220. function binl_md5(x, len) {
  221. /* append padding */
  222. x[len >> 5] |= 0x80 << ((len) % 32);
  223. x[(((len + 64) >>> 9) << 4) + 14] = len;
  224. var a = 1732584193;
  225. var b = -271733879;
  226. var c = -1732584194;
  227. var d = 271733878;
  228. for (var i = 0; i < x.length; i += 16) {
  229. var olda = a;
  230. var oldb = b;
  231. var oldc = c;
  232. var oldd = d;
  233. a = md5_ff(a, b, c, d, x[i + 0], 7, -680876936);
  234. d = md5_ff(d, a, b, c, x[i + 1], 12, -389564586);
  235. c = md5_ff(c, d, a, b, x[i + 2], 17, 606105819);
  236. b = md5_ff(b, c, d, a, x[i + 3], 22, -1044525330);
  237. a = md5_ff(a, b, c, d, x[i + 4], 7, -176418897);
  238. d = md5_ff(d, a, b, c, x[i + 5], 12, 1200080426);
  239. c = md5_ff(c, d, a, b, x[i + 6], 17, -1473231341);
  240. b = md5_ff(b, c, d, a, x[i + 7], 22, -45705983);
  241. a = md5_ff(a, b, c, d, x[i + 8], 7, 1770035416);
  242. d = md5_ff(d, a, b, c, x[i + 9], 12, -1958414417);
  243. c = md5_ff(c, d, a, b, x[i + 10], 17, -42063);
  244. b = md5_ff(b, c, d, a, x[i + 11], 22, -1990404162);
  245. a = md5_ff(a, b, c, d, x[i + 12], 7, 1804603682);
  246. d = md5_ff(d, a, b, c, x[i + 13], 12, -40341101);
  247. c = md5_ff(c, d, a, b, x[i + 14], 17, -1502002290);
  248. b = md5_ff(b, c, d, a, x[i + 15], 22, 1236535329);
  249. a = md5_gg(a, b, c, d, x[i + 1], 5, -165796510);
  250. d = md5_gg(d, a, b, c, x[i + 6], 9, -1069501632);
  251. c = md5_gg(c, d, a, b, x[i + 11], 14, 643717713);
  252. b = md5_gg(b, c, d, a, x[i + 0], 20, -373897302);
  253. a = md5_gg(a, b, c, d, x[i + 5], 5, -701558691);
  254. d = md5_gg(d, a, b, c, x[i + 10], 9, 38016083);
  255. c = md5_gg(c, d, a, b, x[i + 15], 14, -660478335);
  256. b = md5_gg(b, c, d, a, x[i + 4], 20, -405537848);
  257. a = md5_gg(a, b, c, d, x[i + 9], 5, 568446438);
  258. d = md5_gg(d, a, b, c, x[i + 14], 9, -1019803690);
  259. c = md5_gg(c, d, a, b, x[i + 3], 14, -187363961);
  260. b = md5_gg(b, c, d, a, x[i + 8], 20, 1163531501);
  261. a = md5_gg(a, b, c, d, x[i + 13], 5, -1444681467);
  262. d = md5_gg(d, a, b, c, x[i + 2], 9, -51403784);
  263. c = md5_gg(c, d, a, b, x[i + 7], 14, 1735328473);
  264. b = md5_gg(b, c, d, a, x[i + 12], 20, -1926607734);
  265. a = md5_hh(a, b, c, d, x[i + 5], 4, -378558);
  266. d = md5_hh(d, a, b, c, x[i + 8], 11, -2022574463);
  267. c = md5_hh(c, d, a, b, x[i + 11], 16, 1839030562);
  268. b = md5_hh(b, c, d, a, x[i + 14], 23, -35309556);
  269. a = md5_hh(a, b, c, d, x[i + 1], 4, -1530992060);
  270. d = md5_hh(d, a, b, c, x[i + 4], 11, 1272893353);
  271. c = md5_hh(c, d, a, b, x[i + 7], 16, -155497632);
  272. b = md5_hh(b, c, d, a, x[i + 10], 23, -1094730640);
  273. a = md5_hh(a, b, c, d, x[i + 13], 4, 681279174);
  274. d = md5_hh(d, a, b, c, x[i + 0], 11, -358537222);
  275. c = md5_hh(c, d, a, b, x[i + 3], 16, -722521979);
  276. b = md5_hh(b, c, d, a, x[i + 6], 23, 76029189);
  277. a = md5_hh(a, b, c, d, x[i + 9], 4, -640364487);
  278. d = md5_hh(d, a, b, c, x[i + 12], 11, -421815835);
  279. c = md5_hh(c, d, a, b, x[i + 15], 16, 530742520);
  280. b = md5_hh(b, c, d, a, x[i + 2], 23, -995338651);
  281. a = md5_ii(a, b, c, d, x[i + 0], 6, -198630844);
  282. d = md5_ii(d, a, b, c, x[i + 7], 10, 1126891415);
  283. c = md5_ii(c, d, a, b, x[i + 14], 15, -1416354905);
  284. b = md5_ii(b, c, d, a, x[i + 5], 21, -57434055);
  285. a = md5_ii(a, b, c, d, x[i + 12], 6, 1700485571);
  286. d = md5_ii(d, a, b, c, x[i + 3], 10, -1894986606);
  287. c = md5_ii(c, d, a, b, x[i + 10], 15, -1051523);
  288. b = md5_ii(b, c, d, a, x[i + 1], 21, -2054922799);
  289. a = md5_ii(a, b, c, d, x[i + 8], 6, 1873313359);
  290. d = md5_ii(d, a, b, c, x[i + 15], 10, -30611744);
  291. c = md5_ii(c, d, a, b, x[i + 6], 15, -1560198380);
  292. b = md5_ii(b, c, d, a, x[i + 13], 21, 1309151649);
  293. a = md5_ii(a, b, c, d, x[i + 4], 6, -145523070);
  294. d = md5_ii(d, a, b, c, x[i + 11], 10, -1120210379);
  295. c = md5_ii(c, d, a, b, x[i + 2], 15, 718787259);
  296. b = md5_ii(b, c, d, a, x[i + 9], 21, -343485551);
  297. a = safe_add(a, olda);
  298. b = safe_add(b, oldb);
  299. c = safe_add(c, oldc);
  300. d = safe_add(d, oldd);
  301. }
  302. return Array(a, b, c, d);
  303. }
  304. /*
  305. * These functions implement the four basic operations the algorithm uses.
  306. */
  307. function md5_cmn(q, a, b, x, s, t) {
  308. return safe_add(bit_rol(safe_add(safe_add(a, q), safe_add(x, t)), s), b);
  309. }
  310. function md5_ff(a, b, c, d, x, s, t) {
  311. return md5_cmn((b & c) | ((~b) & d), a, b, x, s, t);
  312. }
  313. function md5_gg(a, b, c, d, x, s, t) {
  314. return md5_cmn((b & d) | (c & (~d)), a, b, x, s, t);
  315. }
  316. function md5_hh(a, b, c, d, x, s, t) {
  317. return md5_cmn(b ^ c ^ d, a, b, x, s, t);
  318. }
  319. function md5_ii(a, b, c, d, x, s, t) {
  320. return md5_cmn(c ^ (b | (~d)), a, b, x, s, t);
  321. }
  322. /*
  323. * Add integers, wrapping at 2^32. This uses 16-bit operations internally
  324. * to work around bugs in some JS interpreters.
  325. */
  326. function safe_add(x, y) {
  327. var lsw = (x & 0xFFFF) + (y & 0xFFFF);
  328. var msw = (x >> 16) + (y >> 16) + (lsw >> 16);
  329. return (msw << 16) | (lsw & 0xFFFF);
  330. }
  331. /*
  332. * Bitwise rotate a 32-bit number to the left.
  333. */
  334. function bit_rol(num, cnt) {
  335. return (num << cnt) | (num >>> (32 - cnt));
  336. }
  337. export default {
  338. md5: function(str) {
  339. return hex_md5(str);
  340. }
  341. }