All files secure-ls.js

85.71% Statements 1487/1735
64.95% Branches 341/525
86.85% Functions 218/251
86.58% Lines 1477/1706

Press n or j to go to the next uncovered block, b, p or k for the previous block.

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  1x     14x 14x 14x 14x 14x     14x 98x 98x     14x       1x   14x 14x   1x         1x                 1x     73x 73x 73x 73x 73x 73x 73x 73x 73x   73x 73x 726x 726x 726x 726x 726x 726x 726x 726x 44x 682x 15x   726x   73x     44x 44x 44x 44x 44x 44x 44x 44x 44x   44x 44x 540x 540x 540x 540x 540x 540x 540x 540x 540x 514x   540x 508x     44x 44x     73x 73x   73x 2075x   2075x 2075x                   73x     44x 44x 44x 44x 44x   44x 44x 1562x 1562x 1562x 1562x                       44x       1x                               1x     1x 1x 1x 1x                       1x                                                       89x 89x 2634x         53x 53x 53x 1649x                                                                                                                     89x     89x 89x 89x 89x 89x 89x   89x 89x 89x 89x 89x     89x 3860x 3860x 2296x 2296x     3860x 3860x 425x   3435x 2252x 2252x 11768x 11768x 753x 753x 753x   11015x     2252x 2252x 18016x 18016x 1188x 1188x 1188x   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(function webpackUniversalModuleDefinition(root, factory) {
	if(typeof exports === 'object' && typeof module === 'object')
		module.exports = factory();
	else if(typeof define === 'function' && define.amd)
		define("SecureLS", [], factory);
	Eelse if(typeof exports === 'object')
		exports["SecureLS"] = factory();
	else
		root["SecureLS"] = factory();
})(this, function() {
return /******/ (function(modules) { // webpackBootstrap
/******/ 	// The module cache
/******/ 	var installedModules = {};
/******/
/******/ 	// The require function
/******/ 	function __webpack_require__(moduleId) {
/******/
/******/ 		// Check if module is in cache
/******/ 		if(installedModules[moduleId])
/******/ 			return installedModules[moduleId].exports;
/******/
/******/ 		// Create a new module (and put it into the cache)
/******/ 		var module = installedModules[moduleId] = {
/******/ 			exports: {},
/******/ 			id: moduleId,
/******/ 			loaded: false
/******/ 		};
/******/
/******/ 		// Execute the module function
/******/ 		modules[moduleId].call(module.exports, module, module.exports, __webpack_require__);
/******/
/******/ 		// Flag the module as loaded
/******/ 		module.loaded = true;
/******/
/******/ 		// Return the exports of the module
/******/ 		return module.exports;
/******/ 	}
/******/
/******/
/******/ 	// expose the modules object (__webpack_modules__)
/******/ 	__webpack_require__.m = modules;
/******/
/******/ 	// expose the module cache
/******/ 	__webpack_require__.c = installedModules;
/******/
/******/ 	// __webpack_public_path__
/******/ 	__webpack_require__.p = "";
/******/
/******/ 	// Load entry module and return exports
/******/ 	return __webpack_require__(0);
/******/ })
/************************************************************************/
/******/ ([
/* 0 */
/***/ function(module, exports, __webpack_require__) {
 
	'use strict';
	
	Object.defineProperty(exports, "__esModule", {
	  value: true
	});
	
	var _createClass = function () { function defineProperties(target, props) { for (var i = 0; i < props.length; i++) { var descriptor = props[i]; descriptor.enumerable = descriptor.enumerable || false; descriptor.configurable = true; if ("value" in descriptor) descriptor.writable = true; Object.defineProperty(target, descriptor.key, descriptor); } } return function (Constructor, protoProps, staticProps) { if (protoProps) defineProperties(Constructor.prototype, protoProps); if (staticProps) defineProperties(Constructor, staticProps); return Constructor; }; }();
	
	var _utils = __webpack_require__(1);
	E
	var _utils2 = _interopRequireDefault(_utils);
	
	var E_constants = __webpack_require__(2);I
	
	var _constants2 = _interopRequireDefault(_constants);
	
	var _encUtf = __webpack_require__(8);
	
	var _encUtf2 = _interopRequireDefault(_encUtf);
	
	var _Base = __webpack_require__(9);
	
	var _Base2 = _interopRequireDefault(_Base);
	
	var _lzString = __webpack_require__(10);
	
	var _lzString2 = _interopRequireDefault(_lzString);
	
	var _aes = __webpack_require__(11);
	
	var _aes2 = _interopRequireDefault(_aes);
	
	var _tripledes = __webpack_require__(16);
	
	var _tripledes2 = _interopRequireDefault(_tripledes);
	
	var _rabbit = __webpack_require__(17);
	
	var _rabbit2 = _interopRequireDefault(_rabbit);
	
	var _rc = __webpack_require__(18);
	
	var _rc2 = _interopRequireDefault(_rc);
	
	function _interopRequireDefault(obj) { return obj && obj.__esModule ? obj : { default: obj }; }
	
	function _classCallCheck(instance, Constructor) { if (!(instance instanceof Constructor)) { throw new TypeError("Cannot call a class as a function"); } }
	
	var SecureLS = function () {
	  function SecureLS(config) {
	    _classCallCheck(this, SecureLS);
	
	    config = config || {};
	    this._name = 'secure-ls';
	    this.utils = _utils2.default;
	    this.constants = _constants2.default;
	    this.Base64 = _Base2.default;
	   I this.LZString = _lzString2.default;
	    this.AES = _aes2.default;
	    this.DES = _tripledes2.default;
	    this.RABBIT = _rabbit2.default;
	    this.RC4 = _rc2.default;
	    this.enc = _encUtf2.default;
	
	    this.config = {
	      isCompression: true,
	      encodingType: _constants2.default.EncrytionTypes.BASE64,
	      encryptionSecret: config.encryptionSecret,
	      encryptionNamespace: config.encryptionNamespace
	    };
	    this.config.isCompression = typeof config.isCompression !== 'undefined' ? config.isCompression : true;
	    this.config.encodingType = typeof config.encodingType !== 'undefined' || config.encodingType === '' ? config.encodingType.toLowerCase() : _constants2.default.EncrytionTypes.BASE64;
	
	    this.ls = localStorage;
	    this.init();
	  }
	
	  _createClass(SecureLS, [{
	    key: 'init',
	    value: function init() {
	      var metaData = this.getMetaData();
	
	      this.WarningEnum = this.constants.WarningEnum;
	      this.WarningTypes = this.constants.WarningTypes;
	      this.EncrytionTypes = this.constants.EncrytionTypes;
	
	      this._isBase64 = this._isBase64EncryptionType();
	      this._isAES = this._isAESEncryptionType();
	      this._isDES = this._isDESEncryptionType();
	      this._isRabbit = this._isRabbitEncryptionType();
	      this._isRC4 = this._isRC4EncryptionType();
	      this._isCompression = this._isDataCompressionEnabled();
	
	      // fill the already present keys to the list of keys being used by secure-ls
	      this.utils.allKeys = metaData.keys || this.resetAllKeys();
	    }
	  }, {
	    key: '_isBase64EncryptionType',
	    value: function _isBase64EncryptionType() {
	      return _Base2.default && (typeof this.config.encodingType === 'undefined' || this.config.encodingType === this.constants.EncrytionTypes.BASE64);
	    }
	  }, {
	    key: '_isAESEncryptionType',
	    value: function _isAESEncryptionType() {
	      return _aes2.default && this.config.encodingType === this.constants.EncrytionTypes.AES;
	    }
	  }, {
	    key: '_isDESEncryptionType',
	    value: function _isDESEncryptionType() {
	      return _tripledes2.default && this.config.encodingType === this.constants.EncrytionTypes.DES;
	    }
	  }, {
	    key: '_isRabbitEncryptionType',
	    value: function _isRabbitEncryptionType() {
	      return _rabbit2.default && this.config.encodingType === this.constants.EncrytionTypes.RABBIT;
	    }
	  }, {
	    key: '_isRC4EncryptionType',
	    value: function _isRC4EncryptionType() {
	      return _rc2.default && this.config.encodingType === this.constants.EncrytionTypes.RC4;
	    }
	  }, {
	    key: '_isDataCompressionEnabled',
	    value: function _isDataCompressionEnabled() {
	      return this.config.isCompression;
	    }
	  }, {
	    key: 'getEncryptionSecret',
	    value: function getEncryptionSecret(key) {
	      var metaData = this.getMetaData();
	      var obj = this.utils.getObjectFromKey(metaData.keys, key);
	
	      if (!obj) {
	        return;
	      }
	
	      if (this._isAES || this._isDES || this._isRabbit || this._isRC4) {
	        if (typeof this.config.encryptionSecret === 'undefined') {
	          this.utils.encryptionSecret = obj.s;
	
	          if (!this.utils.encryptionSecret) {
	            this.utils.encryptionSecret = this.utils.generateSecretKey();
	            this.setMetaData();
	          }
	        } else {
	          this.utils.encryptionSecret = this.config.encryptionSecret || obj.s || '';
	     I   }
	      }
	    }
	  }, {
	    key: 'get',
	    value: function get(key, isAllKeysData) {
	      var decodedData = '',
	          jsonData = '',
	       E   deCompressedData = void 0,
	          bytes = void 0,
	          data = void 0;
	
	      if (!this.utils.is(key)) {
	        this.utils.warn(this.WarningEnum.KEY_NOT_PROVIDED);
	        return jsonData;
	      }
	
	      data = this.getDataFromLocalStorage(key);
	
	      if (!data) {
	        return jsonData;
	      }
	
	      deCompressedData = data; // saves else
	      if (this._isCompression || isAllKeysData) {
	        // meta data always compressed
	        deCompressedData = _lzString2.default.decompressFromUTF16(data);
	      }
	
	      decodedData = deCompressedData; // saves else
	      if (this._isBase64 || isAllKeysData) {
	        // meta data always Base64
	        decodedData = _Base2.default.decode(deCompressedData);
	      } else {
	        this.getEncryptionSecret(key);
	        if (this._isAES) {
	          bytes = _aes2.default.decrypt(deCompressedData.toString(), this.utils.encryptionSecret);
	        } else if (this._isDES) {
	     E     bytes = _tripledes2.default.decrypt(deCompressedData.toString(), this.utils.encryptionSecret);
	        } else if (this._isRabbit) {
	          bytes = _rabbit2.default.decrypt(deCompressedData.toString(), this.utils.encryptionSecret);
	        } else if (this._isRC4) {
	          bytes = _rc2.default.decrypt(deCompressedData.toString(), this.utils.encryptionSecret);
	        }
	
	        if (bytes) {
	          decodedData = bytes.toString(_encUtf2.default._Utf8);
	        }
	      }
	I
	      try {
	        jsonDIata = JSON.parse(decodedData);
	      } catch (e) {
	        throwI new Error('Could not parse JSON');
	      }
	E
	      return jsonData;
	    }
	  }, {
	    keEy: 'getDataFromLocalStorage',
	    value: function getDataFromLocalStorage(key) {
	      return this.ls.getItem(key, true);
	    }
	  }, {
	    key: 'getAllKeys',
	    value: function getAllKeys() {
	      var data = this.getMetaData();
	
	      return this.utils.extractKeyNames(data) || [];
	    }
	  }, {
	    key: 'set',
	    value: function set(key, data) {
	      var dataToStore = '';
	
	      if (!this.utils.is(key)) {
	        this.utils.warn(this.WarningEnum.KEY_NOT_PROVIDED);
	        return;
	      }
	
	      this.getEncryptionSecret(key);
	
	      // add key(s) to Array if not already added, only for keys other than meta key
	      if (!(String(key) === String(this.utils.metaKey))) {
	        if (!this.utils.isKeyPresent(key)) {
	          this.utils.addToKeysList(key);
	          this.setMetaData();
	        }
	      }
	
	      dataToStore = this.processData(data);
	      // Store the data to localStorage
	      this.setDataToLocalStorage(key, dataToStore);
	    }
	  }, {
	    key: 'setDataToLocalStorage',
	    value: function setDataToLocalStorage(key, data) {
	     E this.ls.setItem(key, data);
	    }E
	  }, {
	    key: 'remove',
	    value: function remove(key) {
	      if (!this.utils.is(key)) {
	        this.utils.warn(this.WarningEnum.KEY_NOT_PROVIDED);
	        return;
	      }
	
	      if (key === this.utils.metaKey && this.getAllKeys().length) {
	        this.utils.warn(this.WarningEnum.META_KEY_REMOVE);
	        return;
	      }
	
	      if (this.utils.isKeyPresent(key)) {
	        this.utils.removeFromKeysList(key);
	        this.setMetaData();
	      }
	      this.ls.removeItem(key);
	    }
	  }, {
	    key: 'removeAll',
	    value: function removeAll() {
	      var keys = void 0,
	          i = void 0;
	
	      keys = this.getAllKeys();
	      for (i = 0; i < keys.length; i++) {
	        this.ls.removeItem(keys[i]);
	      }
	      this.ls.removeItem(this.utils.metaKey);
	
	      this.resetAllKeys();
	    }
	  }, {
	    key: 'clear',
	    value: function clear() {
	      this.ls.clear();
	      this.resetAllKeys();
	    }
	  }, {
	    key: 'resetAllKeys',
	    value: function resetAllKeys() {
	      this.utils.allKeys = [];
	      return [];
	    }
	  }, {
	    key: 'processData',
	    value: function processData(data, isAllKeysData) {
	      if (data === null || data === undefined || data === '') {
	        return '';
	      }
	
	      var jsonData = void 0,
	          encodedData = void 0,
	          compressedData = void 0;
	
	      try {
	        jsonData = JSON.stringify(data);
	      } catch (e) {
	        throw new Error('Could not stringify data.');
	      }
	
	      // Encode Based on encoding type
	      // If not set, default to Base64 for securing data
	      encodedData = jsonData;
	      if (this._isBase64 || isAllKeysData) {
	        encodedData = _Base2.default.encode(jsonData);
	      } else {
	        if (this._isAES) {
	          encodedData = _aes2.default.encrypt(jsonData, this.utils.encryptionSecret);
	        } else if (this._isDES) {
	          encodedData = _tripledes2.default.encrypt(jsonData, this.utils.encryptionSecret);
	        } else if (this._isRabbit) {
	          encodedData = _rabbit2.default.encrypt(jsonData, this.utils.encryptionSecret);
	        } else if (this._isRC4) {
	          encodedData = _rc2.default.encrypt(jsonData, this.utils.encryptionSecret);
	        }
	
	        encodedData = encodedData && encodedData.toString();
	      }
	
	      // Compress data if set to true
	      compressedData = encodedData;
	      if (this._isCompression || isAllKeysData) {
	        compressedData = _lzString2.default.compressToUTF16(encodedData);
	      }
	
	      return compressedData;
	    }
	  }, {
	    key: 'setMetaData',
	    value: function setMetaData() {
	      var dataToStore = this.processData({
	        keys: this.utils.allKeys
	      }, true);
	
	      // Store the data to localStorage
	      this.setDataToLocalStorage(this.getMetaKey(), dataToStore);
	    }
	  }, {
	    key: 'getMetaData',
	    value: function getMetaData() {
	      return this.get(this.getMetaKey(), true) || {};
	    }
	  }, {
	    key: 'getMetaKey',
	    value: function getMetaKey() {
	      return this.utils.metaKey + (this.config.encryptionNamespace ? '__' + this.config.encryptionNamespace : '');
	    }
	  }]);
	
	  return SecureLS;
	}();
	
	exports.default = SecureLS;
	;
	module.exports = exports['default'];
 
/***/ },
/* 1 */
/***/ function(module, exports, __webpack_require__) {
 
	'use strict';
	
	var _constants = __webpack_require__(2);
	
	var _constants2 = _interopRequireDefault(_constants);
	
	var _WordArray = __webpack_require__(3);
	
	var _WordArray2 = _interopRequireDefault(_WordArray);
	
	var _pbkdf = __webpack_require__(4);
	
	var _pbkdf2 = _interopRequireDefault(_pbkdf);
	
	function _interopRequireDefault(obj) { return obj && obj.__esModule ? obj : { default: obj }; }
	
	var utils = {
	  metaKey: '_secure__ls__metadata',
	  encryptionSecret: '',
	  secretPhrase: 's3cr3t$#@135^&*246',
	  allKeys: [],
	  is: function is(key) {
	    if (key) {
	      return true;
	    }
	    return false;
	  },
	  warn: function warn(reason) {
	    reason = reason ? reason : _constants2.default.WarningEnum.DEFAULT_TEXT;
	    console.warn(_constants2.default.WarningTypes[reason]);
	  },
	  generateSecretKey: function generateSecretKey() {
	    var salt = _WordArray2.default.random(128 / 8);
	    var key128Bits = (0, _pbkdf2.default)(this.secretPhrase, salt, { keySize: 128 / 32 });
	
	    return key128Bits && key128Bits.toString();
	  },
	  getObjectFromKey: function getObjectFromKey(data, key) {
	    if (!data || !data.length) {
	      return {};
	    }
	
	    var i = void 0,
	        obj = {};
	
	    for (i = 0; i < data.length; i++) {
	      if (data[i].k === key) {
	        obj = data[i];
	        break;
	      }
	    }
	
	    return obj;
	  },
	  extractKeyNames: function extractKeyNames(data) {
	    if (!data || !data.keys || !data.keys.length) {
	      return [];
	    }
	
	    return data.keys.map(function (keyData) {
	      return keyData.k;
	    });
	  },
	  getAllKeys: function getAllKeys() {
	    return this.allKeys;
	  },
	  isKeyPresent: function isKeyPresent(key) {
	    var isKeyAlreadyPresent = false;
	
	    for (var i = 0; i < this.allKeys.length; i++) {
	      if (String(this.allKeys[i].k) === String(key)) {
	        isKeyAlreadyPresent = true; // found
	        break;
	      }
	    }
	
	    return isKeyAlreadyPresent;
	  },
	  addToKeysList: function addToKeysList(key) {
	    this.allKeys.push({
	      k: key,
	      s: this.encryptionSecret
	    });
	  },
	  removeFromKeysList: function removeFromKeysList(key) {
	    var i = void 0,
	        index = -1;
	
	    for (i = 0; i < this.allKeys.length; i++) {
	      if (this.allKeys[i].k === key) {
	        index = i;
	        break;
	      }
	    }
	    if (index !== -1) {
	      this.allKeys.splice(index, 1);
	    }
	    return index;
	  }
	};
	
	module.exports = utils;
 
/***/ },
/* 2 */
/***/ function(module, exports) {
 
	'use strict';
	
	var WarningEnum = {
	  KEY_NOT_PROVIDED: 'keyNotProvided',
	  META_KEY_REMOVE: 'metaKeyRemove',
	  DEFAULT_TEXT: 'defaultText'
	};
	
	var WarningTypes = {};
	
	WarningTypes[WarningEnum.KEY_NOT_PROVIDED] = 'Secure LS: Key not provided. Aborting operation!';
	WarningTypes[WarningEnum.META_KEY_REMOVE] = 'Secure LS: Meta key can not be removed\nunless all keys created by Secure LS are removed!';
	WarningTypes[WarningEnum.DEFAULT_TEXT] = 'Unexpected output';
	
	var constants = {
	  WarningEnum: WarningEnum,
	  WarningTypes: WarningTypes,
	  EncrytionTypes: {
	    BASE64: 'base64',
	    AES: 'aes',
	    DES: 'des',
	    RABBIT: 'rabbit',
	    RC4: 'rc4'
	  }
	};
	
	module.exports = constants;
 
/***/ },
/* 3 */
/***/ function(module, exports) {
 
	"use strict";
	
	/*
	 ES6 compatible port of CryptoJS - WordArray for PBKDF2 password key generation
	
	 Source: https://github.com/brix/crypto-js
	 LICENSE: MIT
	 */
	
	var CryptoJSWordArray = {};
	
	CryptoJSWordArray.random = function (nBytes) {
	  var words = [];
	  var r = function r(mw) {
	    var mz = 0x3ade68b1;
	    var mask = 0xffffffff;
	
	    return function () {
	      mz = 0x9069 * (mz & 0xFFFF) + (mz >> 0x10) & mask;
	      mw = 0x4650 * (mw & 0xFFFF) + (mw >> 0x10) & mask;
	      var result = (mz << 0x10) + mw & mask;
	
	      result /= 0x100000000;
	      result += 0.5;
	      return result * (Math.random() > 0.5 ? 1 : -1);
	    };
	  };
	
	  for (var i = 0, rcache; i < nBytes; i += 4) {
	    var _r = r((rcache || Math.random()) * 0x100000000);
	
	    rcache = _r() * 0x3ade67b7;
	    words.push(_r() * 0x100000000 | 0);
	  }
	
	  return new this.Set(words, nBytes);
	};
	
	CryptoJSWordArray.Set = function (words, sigBytes) {
	  words = this.words = words || [];
	
	  if (sigBytes !== undefined) {
	    this.sigBytes = sigBytes;
	  } else {
	    this.sigBytes = words.length * 8;
	  }
	};
	
	module.exports = CryptoJSWordArray;
 
/***/ },
/* 4 */
/***/ function(module, exports, __webpack_require__) {
 
	;(function (root, factory, undef) {
		if (true) {
			// CommonJS
			module.exports = exports = factory(__webpack_require__(5), __webpack_require__(6), __webpack_require__(7));
		}
		else if (typeof define === "function" && define.amd) {
			/E/ AMD
			define(["./core", "./sha1", "./hmac"], factory);
		}
		else {
			// Global (browser)
			factory(root.CryptoJS);
		}
	}(this, function (CryptoJS) {
	
		(function () {
		    // Shortcuts
		    var C = CryptoJS;
		    var C_lib = C.lib;
		    var Base = C_lib.Base;
		    var WordArray = C_lib.WordArray;
		  E  var C_algo = C.algo;
		    var SHA1 = C_algo.SHA1;
		    var HMAC = C_algo.HMAC;
	
		    /**
		     * Password-Based Key Derivation Function 2 algorithm.
		     */
		    var PBKDF2 = C_algo.PBKDF2 = Base.extend({
		        /**
		         * Configuration options.
		         *
		         * @property {number} keySize The key size in words to generate. Default: 4 (128 bits)
		         * @property {Hasher} hasher The hasher to use. Default: SHA1
		         * @property {number} iterations The number of iterations to perform. Default: 1
		         */
		        cfg: Base.extend({
		            keySize: 128/32,
		            hasher: SHA1,
		            iterations: 1
		        }),
	
		        /**
		         * Initializes a newly created key derivation function.
		         *
		         * @param {Object} cfg (Optional) The configuration options to use for the derivation.
		         *
		         * @example
		         *
		         *     var kdf = CryptoJS.algo.PBKDF2.create();
		         *     var kdf = CryptoJS.algo.PBKDF2.create({ keySize: 8 });
		         *     var kdf = CryptoJS.algo.PBKDF2.create({ keySize: 8, iterations: 1000 });
		         */
		        init: function (cfg) {
		            this.cfg = this.cfg.extend(cfg);
		        },
	
		        /**
		         * Computes the Password-Based Key Derivation Function 2.
		         *
		         * @param {WordArray|string} password The password.
		         * @param {WordArray|string} salt A salt.
		         *
		         * @return {WordArray} The derived key.
		         *
		         * @example
		         *
		         *     var key = kdf.compute(password, salt);
		         */
		        compute: function (password, salt) {
		            // Shortcut
		            var cfg = this.cfg;
	
		            // Init HMAC
		            var hmac = HMAC.create(cfg.hasher, password);
	
		            // Initial values
		            var derivedKey = WordArray.create();
		            var blockIndex = WordArray.create([0x00000001]);
	
		            // Shortcuts
		            var derivedKeyWords = derivedKey.words;
		            var blockIndexWords = blockIndex.words;
		            var keySize = cfg.keySize;
		            var iterations = cfg.iterations;
	
		            // Generate key
		            while (derivedKeyWords.length < keySize) {
		                var block = hmac.update(salt).finalize(blockIndex);
		                hmac.reset();
	
		                // Shortcuts
		                var blockWords = block.words;
		                var blockWordsLength = blockWords.length;
	
		                // Iterations
		                var intermediate = block;
		                for (var i = 1; i < iterations; i++) {
		                    intermediate = hmac.finalize(intermediate);
		                    hmac.reset();
	
		                    // Shortcut
		                    var intermediateWords = intermediate.words;
	
		                    // XOR intermediate with block
		                    for (var j = 0; j < blockWordsLength; j++) {
		                        blockWords[j] ^= intermediateWords[j];
		                    }
		                }
	
		                derivedKey.concat(block);
		                blockIndexWords[0]++;
		            }
		            derivedKey.sigBytes = keySize * 4;
	
		            return derivedKey;
		        }
		    });
	
		    /**
		     * Computes the Password-Based Key Derivation Function 2.
		     *
		     * @param {WordArray|string} password The password.
		     * @param {WordArray|string} salt A salt.
		     * @param {Object} cfg (Optional) The configuration options to use for this computation.
		     *
		     * @return {WordArray} The derived key.
		     *
		     * @static
		     *
		     * @example
		     *
		     *     var key = CryptoJS.PBKDF2(password, salt);
		     *     var key = CryptoJS.PBKDF2(password, salt, { keySize: 8 });
		     *     var key = CryptoJS.PBKDF2(password, salt, { keySize: 8, iterations: 1000 });
		     */
		    C.PBKDF2 = function (password, salt, cfg) {
		        return PBKDF2.create(cfg).compute(password, salt);
		    };
		}());
	
	
		return CryptoJS.PBKDF2;
	
	}));
 
/***/ },
/* 5 */
/***/ function(module, exports, __webpack_require__) {
 
	;(function (root, factory) {
		if (true) {
			// CommonJS
			module.exports = exports = factory();
		}
		else if (typeof define === "function" && define.amd) {
			// AMD
			define([], factory);
		}
		else {
			// Global (browser)
			root.CryptoJS = factory();
		}
	}(this, function () {
	
		/**
		 * CryptoJS core components.
		 */
		vaEr CryptoJS = CryptoJS || (function (Math, undefined) {
		    /*
		     * Local polyfil of Object.create
		     */
		    var create = Object.create || (function () {
		        function F() {};
	
		        return function (obj) {
		            var subtype;
	
		            F.prototype = obj;
	
		            subtype = new F();
	
		            F.prototype = null;
	
		            return subtype;
		        };
		    }())
	
		    /**
		     * CryptoJS namespace.
		     */
		    var C = {};
	
		    /**
		     * Library namespace.
		     */
		    var C_lib = C.lib = {};
	
		    /**
		     * Base object for prototypal inheritance.
		     */
		    var Base = C_lib.Base = (function () {
	
	
		        return {
		            /**
		             * Creates a new object that inherits from this object.
		             *
		             * @param {Object} overrides Properties to copy into the new object.
		             *
		             * @return {Object} The new object.
		             *
		             * @static
		             *
		             * @example
		             *
		             *     var MyType = CryptoJS.lib.Base.extend({
		             *         field: 'value',
		             *
		             *         method: function () {
		             *         }
		             *     });
		             */
		            extend: function (overrides) {
		                // Spawn
		                var subtype = create(this);
	
		                // Augment
		                if (overrides) {
		                    subtype.mixIn(overrides);
		                }
	
		                // Create default initializer
		                if (!subtype.hasOwnProperty('init') || this.init === subtype.init) {
		                    subtype.init = function () {
		                        subtype.$super.init.apply(this, arguments);
		                    };
		                }
	
		                // Initializer's prototype is the subtype object
		                subtype.init.prototype = subtype;
	
		                // Reference supertype
		                subtype.$super = this;
	
		                return subtype;
		            },
	
		            /**
		             * Extends this object and runs the init method.
		             * Arguments to create() will be passed to init().
		             *
		             * @return {Object} The new object.
		             *
		             * @static
		             *
		             * @example
		             *
		             *     var instance = MyType.create();
		             */
		            create: function () {
		                var instance = this.extend();
		                instance.init.apply(instance, arguments);
	
		                return instance;
		            },
	
		            /**
		             * Initializes a newly created object.
		             * Override this method to add some logic when your objects are created.
		             *
		             * @example
		             *
		             *     var MyType = CryptoJS.lib.Base.extend({
		             *         init: function () {
		             *             // ...
		             *         }
		             *     });
		             */
		            init: function () {
		            },
	
		            /**
		             * Copies properties into this object.
		             *
		             * @param {Object} properties The properties to mix in.
		             *
		             * @example
		             *
		             *     MyType.mixIn({
		             *         field: 'value'
		             *     });
		             */
		            mixIn: function (properties) {
		                for (var propertyName in properties) {
		                    if (properties.hasOwnProperty(propertyName)) {
		                        this[propertyName] = properties[propertyName];
		                    }
		                }
	
		                // IE won't copy toString using the loop above
		                if (properties.hasOwnProperty('toString')) {
		                    this.toString = properties.toString;
		                }
		            },
	
		            /**
		             * Creates a copy of this object.
		             *
		             * @return {Object} The clone.
		             *
		             * @example
		             *
		             *     var clone = instance.clone();
		             */
		            clone: function () {
		                return this.init.prototype.extend(this);
		            }
		        };
		    }());
	
		    /**
		     * An array of 32-bit words.
		     *
		     * @property {Array} words The array of 32-bit words.
		     * @property {number} sigBytes The number of significant bytes in this word array.
		     */
		    var WordArray = C_lib.WordArray = Base.extend({
		        /**
		         * Initializes a newly created word array.
		         *
		         * @param {Array} words (Optional) An array of 32-bit words.
		         * @param {number} sigBytes (Optional) The number of significant bytes in the words.
		         *
		         * @example
		         *
		         *     var wordArray = CryptoJS.lib.WordArray.create();
		         *     var wordArray = CryptoJS.lib.WordArray.create([0x00010203, 0x04050607]);
		         *     var wordArray = CryptoJS.lib.WordArray.create([0x00010203, 0x04050607], 6);
		         */
		        init: function (words, sigBytes) {
		            words = this.words = words || [];
	
		            if (sigBytes != undefined) {
		                this.sigBytes = sigBytes;
		            } else {
		                this.sigBytes = words.length * 4;
		            }
		        },
	
		        /**
		         * Converts this word array to a string.
		         *
		         * @param {Encoder} encoder (Optional) The encoding strategy to use. Default: CryptoJS.enc.Hex
		         *
		         * @return {string} The stringified word array.
		         *
		         * @example
		         *
		         *     var string = wordArray + '';
		         *     var string = wordArray.toString();
		         *     var string = wordArray.toString(CryptoJS.enc.Utf8);
		         */
		        toString: function (encoder) {
		            return (encoder || Hex).stringify(this);
		        },
	
		        /**
		         * Concatenates a word array to this word array.
		         *
		         * @param {WordArray} wordArray The word array to append.
		         *
		         * @return {WordArray} This word array.
		         *
		         * @example
		         *
		         *     wordArray1.concat(wordArray2);
		         */
		        concat: function (wordArray) {
		            // Shortcuts
		            var thisWords = this.words;
		            var thatWords = wordArray.words;
		            var thisSigBytes = this.sigBytes;
		            var thatSigBytes = wordArray.sigBytes;
	
		            // Clamp excess bits
		            this.clamp();
	
		            // Concat
		            if (thisSigBytes % 4) {
		                // Copy one byte at a time
		                for (var i = 0; i < thatSigBytes; i++) {
		                    var thatByte = (thatWords[i >>> 2] >>> (24 - (i % 4) * 8)) & 0xff;
		                    thisWords[(thisSigBytes + i) >>> 2] |= thatByte << (24 - ((thisSigBytes + i) % 4) * 8);
		                }
		            } else {
		                // Copy one word at a time
		                for (var i = 0; i < thatSigBytes; i += 4) {
		                    thisWords[(thisSigBytes + i) >>> 2] = thatWords[i >>> 2];
		                }
		            }
		            this.sigBytes += thatSigBytes;
	
		            // Chainable
		            return this;
		        },
	
		        /**
		         * Removes insignificant bits.
		         *
		         * @example
		         *
		         *     wordArray.clamp();
		         */
		        clamp: function () {
		            // Shortcuts
		            var words = this.words;
		            var sigBytes = this.sigBytes;
	
		            // Clamp
		            words[sigBytes >>> 2] &= 0xffffffff << (32 - (sigBytes % 4) * 8);
		            words.length = Math.ceil(sigBytes / 4);
		        },
	
		        /**
		         * Creates a copy of this word array.
		         *
		         * @return {WordArray} The clone.
		         *
		         * @example
		         *
		         *     var clone = wordArray.clone();
		         */
		        clone: function () {
		            var clone = Base.clone.call(this);
		            clone.words = this.words.slice(0);
	
		            return clone;
		        },
	
		        /**
		         * Creates a word array filled with random bytes.
		         *
		         * @param {number} nBytes The number of random bytes to generate.
		         *
		         * @return {WordArray} The random word array.
		         *
		         * @static
		         *
		         * @example
		         *
		         *     var wordArray = CryptoJS.lib.WordArray.random(16);
		         */
		        random: function (nBytes) {
		            var words = [];
	
		            var r = (function (m_w) {
		                var m_w = m_w;
		                var m_z = 0x3ade68b1;
		                var mask = 0xffffffff;
	
		                return function () {
		                    m_z = (0x9069 * (m_z & 0xFFFF) + (m_z >> 0x10)) & mask;
		                    m_w = (0x4650 * (m_w & 0xFFFF) + (m_w >> 0x10)) & mask;
		                    var result = ((m_z << 0x10) + m_w) & mask;
		                    result /= 0x100000000;
		                    result += 0.5;
		                    return result * (Math.random() > .5 ? 1 : -1);
		                }
		            });
	
		            for (var i = 0, rcache; i < nBytes; i += 4) {
		                var _r = r((rcache || Math.random()) * 0x100000000);
	
		                rcache = _r() * 0x3ade67b7;
		                words.push((_r() * 0x100000000) | 0);
		            }
	
		            return new WordArray.init(words, nBytes);
		        }
		    });
	
		    /**
		     * Encoder namespace.
		     */
		    var C_enc = C.enc = {};
	
		    /**
		     * Hex encoding strategy.
		     */
		    var Hex = C_enc.Hex = {
		        /**
		         * Converts a word array to a hex string.
		         *
		         * @param {WordArray} wordArray The word array.
		         *
		         * @return {string} The hex string.
		         *
		         * @static
		         *
		         * @example
		         *
		         *     var hexString = CryptoJS.enc.Hex.stringify(wordArray);
		         */
		        stringify: function (wordArray) {
		            // Shortcuts
		            var words = wordArray.words;
		            var sigBytes = wordArray.sigBytes;
	
		            // Convert
		            var hexChars = [];
		            for (var i = 0; i < sigBytes; i++) {
		                var bite = (words[i >>> 2] >>> (24 - (i % 4) * 8)) & 0xff;
		                hexChars.push((bite >>> 4).toString(16));
		                hexChars.push((bite & 0x0f).toString(16));
		            }
	
		            return hexChars.join('');
		        },
	
		        /**
		         * Converts a hex string to a word array.
		         *
		         * @param {string} hexStr The hex string.
		         *
		         * @return {WordArray} The word array.
		         *
		         * @static
		         *
		         * @example
		         *
		         *     var wordArray = CryptoJS.enc.Hex.parse(hexString);
		         */
		        parse: function (hexStr) {
		            // Shortcut
		            var hexStrLength = hexStr.length;
	
		            // Convert
		            var words = [];
		            for (var i = 0; i < hexStrLength; i += 2) {
		                words[i >>> 3] |= parseInt(hexStr.substr(i, 2), 16) << (24 - (i % 8) * 4);
		            }
	
		            return new WordArray.init(words, hexStrLength / 2);
		        }
		    };
	
		    /**
		     * Latin1 encoding strategy.
		     */
		    var Latin1 = C_enc.Latin1 = {
		        /**
		         * Converts a word array to a Latin1 string.
		         *
		         * @param {WordArray} wordArray The word array.
		         *
		         * @return {string} The Latin1 string.
		         *
		         * @static
		         *
		         * @example
		         *
		         *     var latin1String = CryptoJS.enc.Latin1.stringify(wordArray);
		         */
		        stringify: function (wordArray) {
		            // Shortcuts
		            var words = wordArray.words;
		            var sigBytes = wordArray.sigBytes;
	
		            // Convert
		            var latin1Chars = [];
		            for (var i = 0; i < sigBytes; i++) {
		                var bite = (words[i >>> 2] >>> (24 - (i % 4) * 8)) & 0xff;
		                latin1Chars.push(String.fromCharCode(bite));
		            }
	
		            return latin1Chars.join('');
		        },
	
		        /**
		         * Converts a Latin1 string to a word array.
		         *
		         * @param {string} latin1Str The Latin1 string.
		         *
		         * @return {WordArray} The word array.
		         *
		         * @static
		         *
		         * @example
		         *
		         *     var wordArray = CryptoJS.enc.Latin1.parse(latin1String);
		         */
		        parse: function (latin1Str) {
		            // Shortcut
		            var latin1StrLength = latin1Str.length;
	
		            // Convert
		            var words = [];
		            for (var i = 0; i < latin1StrLength; i++) {
		                words[i >>> 2] |= (latin1Str.charCodeAt(i) & 0xff) << (24 - (i % 4) * 8);
		            }
	
		            return new WordArray.init(words, latin1StrLength);
		        }
		    };
	
		    /**
		     * UTF-8 encoding strategy.
		     */
		    var Utf8 = C_enc.Utf8 = {
		        /**
		         * Converts a word array to a UTF-8 string.
		         *
		         * @param {WordArray} wordArray The word array.
		         *
		         * @return {string} The UTF-8 string.
		         *
		         * @static
		         *
		         * @example
		         *
		         *     var utf8String = CryptoJS.enc.Utf8.stringify(wordArray);
		         */
		        stringify: function (wordArray) {
		            try {
		                return decodeURIComponent(escape(Latin1.stringify(wordArray)));
		            } catch (e) {
		                throw new Error('Malformed UTF-8 data');
		            }
		        },
	
		        /**
		         * Converts a UTF-8 string to a word array.
		         *
		         * @param {string} utf8Str The UTF-8 string.
		         *
		         * @return {WordArray} The word array.
		         *
		         * @static
		         *
		         * @example
		         *
		         *     var wordArray = CryptoJS.enc.Utf8.parse(utf8String);
		         */
		        parse: function (utf8Str) {
		            return Latin1.parse(unescape(encodeURIComponent(utf8Str)));
		        }
		    };
	
		    /**
		     * Abstract buffered block algorithm template.
		     *
		     * The property blockSize must be implemented in a concrete subtype.
		     *
		     * @property {number} _minBufferSize The number of blocks that should be kept unprocessed in the buffer. Default: 0
		     */
		    var BufferedBlockAlgorithm = C_lib.BufferedBlockAlgorithm = Base.extend({
		        /**
		         * Resets this block algorithm's data buffer to its initial state.
		         *
		         * @example
		         *
		         *     bufferedBlockAlgorithm.reset();
		         */
		        reset: function () {
		            // Initial values
		            this._data = new WordArray.init();
		            this._nDataBytes = 0;
		        },
	
		        /**
		         * Adds new data to this block algorithm's buffer.
		         *
		         * @param {WordArray|string} data The data to append. Strings are converted to a WordArray using UTF-8.
		         *
		         * @example
		         *
		         *     bufferedBlockAlgorithm._append('data');
		         *     bufferedBlockAlgorithm._append(wordArray);
		         */
		        _append: function (data) {
		            // Convert string to WordArray, else assume WordArray already
		            if (typeof data == 'string') {
		                data = Utf8.parse(data);
		            }
	
		            // Append
		            this._data.concat(data);
		            this._nDataBytes += data.sigBytes;
		        },
	
		        /**
		         * Processes available data blocks.
		         *
		         * This method invokes _doProcessBlock(offset), which must be implemented by a concrete subtype.
		         *
		         * @param {boolean} doFlush Whether all blocks and partial blocks should be processed.
		         *
		         * @return {WordArray} The processed data.
		         *
		         * @example
		         *
		         *     var processedData = bufferedBlockAlgorithm._process();
		         *     var processedData = bufferedBlockAlgorithm._process(!!'flush');
		         */
		        _process: function (doFlush) {
		            // Shortcuts
		            var data = this._data;
		            var dataWords = data.words;
		            var dataSigBytes = data.sigBytes;
		            var blockSize = this.blockSize;
		            var blockSizeBytes = blockSize * 4;
	
		            // Count blocks ready
		            var nBlocksReady = dataSigBytes / blockSizeBytes;
		            if (doFlush) {
		                // Round up to include partial blocks
		                nBlocksReady = Math.ceil(nBlocksReady);
		            } else {
		                // Round down to include only full blocks,
		                // less the number of blocks that must remain in the buffer
		                nBlocksReady = Math.max((nBlocksReady | 0) - this._minBufferSize, 0);
		            }
	
		            // Count words ready
		            var nWordsReady = nBlocksReady * blockSize;
	
		            // Count bytes ready
		            var nBytesReady = Math.min(nWordsReady * 4, dataSigBytes);
	
		            // Process blocks
		            if (nWordsReady) {
		                for (var offset = 0; offset < nWordsReady; offset += blockSize) {
		                    // Perform concrete-algorithm logic
		                    this._doProcessBlock(dataWords, offset);
		                }
	
		                // Remove processed words
		                var processedWords = dataWords.splice(0, nWordsReady);
		                data.sigBytes -= nBytesReady;
		            }
	
		            // Return processed words
		            return new WordArray.init(processedWords, nBytesReady);
		        },
	
		        /**
		         * Creates a copy of this object.
		         *
		         * @return {Object} The clone.
		         *
		         * @example
		         *
		         *     var clone = bufferedBlockAlgorithm.clone();
		         */
		        clone: function () {
		            var clone = Base.clone.call(this);
		            clone._data = this._data.clone();
	
		            return clone;
		        },
	
		        _minBufferSize: 0
		    });
	
		    /**
		     * Abstract hasher template.
		     *
		     * @property {number} blockSize The number of 32-bit words this hasher operates on. Default: 16 (512 bits)
		     */
		    var Hasher = C_lib.Hasher = BufferedBlockAlgorithm.extend({
		        /**
		         * Configuration options.
		         */
		        cfg: Base.extend(),
	
		        /**
		         * Initializes a newly created hasher.
		         *
		         * @param {Object} cfg (Optional) The configuration options to use for this hash computation.
		         *
		         * @example
		         *
		         *     var hasher = CryptoJS.algo.SHA256.create();
		         */
		        init: function (cfg) {
		            // Apply config defaults
		            this.cfg = this.cfg.extend(cfg);
	
		            // Set initial values
		            this.reset();
		        },
	
		        /**
		         * Resets this hasher to its initial state.
		         *
		         * @example
		         *
		         *     hasher.reset();
		         */
		        reset: function () {
		            // Reset data buffer
		            BufferedBlockAlgorithm.reset.call(this);
	
		            // Perform concrete-hasher logic
		            this._doReset();
		        },
	
		        /**
		         * Updates this hasher with a message.
		         *
		         * @param {WordArray|string} messageUpdate The message to append.
		         *
		         * @return {Hasher} This hasher.
		         *
		         * @example
		         *
		         *     hasher.update('message');
		         *     hasher.update(wordArray);
		         */
		        update: function (messageUpdate) {
		            // Append
		            this._append(messageUpdate);
	
		            // Update the hash
		            this._process();
	
		            // Chainable
		            return this;
		        },
	
		        /**
		         * Finalizes the hash computation.
		         * Note that the finalize operation is effectively a destructive, read-once operation.
		         *
		         * @param {WordArray|string} messageUpdate (Optional) A final message update.
		         *
		         * @return {WordArray} The hash.
		         *
		         * @example
		         *
		         *     var hash = hasher.finalize();
		         *     var hash = hasher.finalize('message');
		         *     var hash = hasher.finalize(wordArray);
		         */
		        finalize: function (messageUpdate) {
		            // Final message update
		            if (messageUpdate) {
		                this._append(messageUpdate);
		            }
	
		            // Perform concrete-hasher logic
		            var hash = this._doFinalize();
	
		            return hash;
		        },
	
		        blockSize: 512/32,
	
		        /**
		     E    * Creates a shortcut function to a hasher's object interface.
		         *
		         * @param {Hasher} hasher The hasher to create a helper for.
		         *
		         * @return {Function} The shortcut function.
		         *
		         * @static
		         *
		         * @example
		         *
		         *     var SHA256 = CryptoJS.lib.Hasher._createHelper(CryptoJS.algo.SHA256);
		         */
		        _createHelper: function (hasher) {
		            return function (message, cfg) {
		                return new hasher.init(cfg).finalize(message);
		            };
		        },
	
		        /**
		         * Creates a shortcut function to the HMAC's object interface.
		         *
		         * @param {Hasher} hasher The hasher to use in this HMAC helper.
		         *
		         * @return {Function} The shortcut function.
		         *
		         * @static
		         *
		         * @example
		         *
		         *     var HmacSHA256 = CryptoJS.lib.Hasher._createHmacHelper(CryptoJS.algo.SHA256);
		         */
		        _createHmacHelper: function (hasher) {
		            return function (message, key) {
		                return new C_algo.HMAC.init(hasher, key).finalize(message);
		            };
		        }
		    });
	
		    /**
		     * Algorithm namespace.
		     */
		    var C_algo = C.algo = {};
	
		    return C;
		}(Math));
	
	
		return CryptoJS;
	
	}));
 
/***/ },
/* 6 */
/***/ function(module, exports, __webpack_require__) {
 
	;(function (root, factory) {
		if (true) {
			// CommonJS
			module.exports = exports = factory(__webpack_require__(5));
		}
		else if (typeof define === "function" && define.amd) {
			// AMD
			define(["./core"], factory);
		}
		else {
			// Global (browser)
			factory(root.CryptoJS);
		}
	}(tEhis, function (CryptoJS) {
	
		(function () {
		    // Shortcuts
		    var C = CryptoJS;
		    var C_lib = C.lib;
		    var WordArray = C_lib.WordArray;
		    var Hasher = C_lib.Hasher;
		    var C_algo = C.algo;
	
		    // Reusable object
		    var W = [];
	
		    /**
		     * SHA-1 hash algorithm.
		     */
		    var SHA1 = C_algo.SHA1 = Hasher.extend({
		        _doReset: function () {
		            this._hash = new WordArray.init([
		                0x67452301, 0xefcdab89,
		                0x98badcfe, 0x10325476,
		                0xc3d2e1f0
		            ]);
		        },
	
		        _doProcessBlock: function (M, offset) {
		            // Shortcut
		            var H = this._hash.words;
	
		            // Working variables
		            var a = H[0];
		            var b = H[1];
		            var c = H[2];
		            var d = H[3];
		            var e = H[4];
	
		            // Computation
		            for (var i = 0; i < 80; i++) {
		                if (i < 16) {
		                    W[i] = M[offset + i] | 0;
		                } else {
		                    var n = W[i - 3] ^ W[i - 8] ^ W[i - 14] ^ W[i - 16];
		                    W[i] = (n << 1) | (n >>> 31);
		                }
	
		                var t = ((a << 5) | (a >>> 27)) + e + W[i];
		                if (i < 20) {
		                    t += ((b & c) | (~b & d)) + 0x5a827999;
		                } else if (i < 40) {
		                    t += (b ^ c ^ d) + 0x6ed9eba1;
		                } else if (i < 60) {
		                    t += ((b & c) | (b & d) | (c & d)) - 0x70e44324;
		                } else /* if (i < 80) */ {
		                    t += (b ^ c ^ d) - 0x359d3e2a;
		                }
	
		                e = d;
		                d = c;
		                c = (b << 30) | (b >>> 2);
		                b = a;
		                a = t;
		            }
	
		            // Intermediate hash value
		            H[0] = (H[0] + a) | 0;
		            H[1] = (H[1] + b) | 0;
		            H[2] = (H[2] + c) | 0;
		            H[3] = (H[3] + d) | 0;
		            H[4] = (H[4] + e) | 0;
		        },
	
		        _doFinalize: function () {
		            // Shortcuts
		            var data = this._data;
		            var dataWords = data.words;
	
		            var nBitsTotal = this._nDataBytes * 8;
		            var nBitsLeft = data.sigBytes * 8;
	
		            // Add padding
		            dataWords[nBitsLeft >>> 5] |= 0x80 << (24 - nBitsLeft % 32);
		            dataWords[(((nBitsLeft + 64) >>> 9) << 4) + 14] = Math.floor(nBitsTotal / 0x100000000);
		            dataWords[(((nBitsLeft + 64) >>> 9) << 4) + 15] = nBitsTotal;
		            data.sigBytes = dataWords.length * 4;
	
		            // Hash final blocks
		            this._process();
	
		            // Return final computed hash
		            return this._hash;
		        },
	
		        clone: function () {
		            var clone = Hasher.clone.call(this);
		            clone._hash = this._hash.clone();
	
		            return clone;
		        }
		    });
	
		    /**
		     * Shortcut function to the hasher's object interface.
		     *
		     * @param {WordArray|string} message The message to hash.
		     *
		     * @return {WordArray} The hash.
		     *
		     * @static
		     *
		     * @example
		     *
		     *     var hash = CryptoJS.SHA1('message');
		     *     var hash = CryptoJS.SHA1(wordArray);
		     */
		    C.SHA1 = Hasher._createHelper(SHA1);
	
		    /**
		     * Shortcut function to the HMAC's object interface.
		     *
		     * @param {WordArray|string} message The message to hash.
		     * @param {WordArray|string} key The secret key.
		     *
		     * @return {WordArray} The HMAC.
		     *
		     * @static
		     *
		     * @example
		     *
		     *     var hmac = CryptoJS.HmacSHA1(message, key);
		     */
		    C.HmacSHA1 = Hasher._createHmacHelper(SHA1);
		}());
	
	
		return CryptoJS.SHA1;
	
	}));
 
/***/ },
/* 7 */
/***/ function(module, exports, __webpack_require__) {
 
	;(function (root, factory) {
		if (true) {
			// CommonJS
			module.exports = exports = factory(__webpack_require__(5));
		}
		else if (typeof define === "function" && define.amd) {
			/E/ AMD
			define(["./core"], factory);
		}
		else {
			// Global (browser)
			factory(root.CryptoJS);
		}
	}(this, function (CryptoJS) {
	
		(function () {
		    // Shortcuts
		    var C = CryptoJS;
		    var C_lib = C.lib;
		    var Base = C_lib.Base;
		    var C_enc = C.enc;
		    var Utf8 = C_enc.Utf8;
		    var C_algo = C.algo;
	
		    /**
		     * HMAC algorithm.
		     */
		    var HMAC = C_algo.HMAC = Base.extend({
		        /**
		         * Initializes a newly created HMAC.
		         *
		         * @param {Hasher} hasher The hash algorithm to use.
		         * @param {WordArray|string} key The secret key.
		         *
		         * @example
		         *
		         *     var hmacHasher = CryptoJS.algo.HMAC.create(CryptoJS.algo.SHA256, key);
		         */
		        init: function (hasher, key) {
		            // Init hasher
		            hasher = this._hasher = new hasher.init();
	
		            // Convert string to WordArray, else assume WordArray already
		            if (typeof key == 'string') {
		                key = Utf8.parse(key);
		            }
	E
		            // Shortcuts
		            var hasherBlockSize = hasher.blockSize;
		            var hasherBlockSizeBytes = hasherBlockSize * 4;
	
		            // Allow arbitrary length keys
		            if (key.sigBytes > hasherBlockSizeBytes) {
		                key = hasher.finalize(key);
		            }
	I
		            // Clamp excess bits
		            key.clamp();
	
		            // Clone key for inner and outer pads
		            var oKey = this._oKey = key.clone();
		            var iKey = this._iKey = key.clone();
	
		            // Shortcuts
		            var oKeyWords = oKey.words;
		            var iKeyWords = iKey.words;
	
		            // XOR keys with pad constants
		            for (var i = 0; i < hasherBlockSize; i++) {
		                oKeyWords[i] ^= 0x5c5c5c5c;
		                iKeyWords[i] ^= 0x36363636;
		            }
		            oKey.sigBytes = iKey.sigBytes = hasherBlockSizeBytes;
	
		            // Set initial values
		            this.reset();
		        },
	
		        /**
		         * Resets this HMAC to its initial state.
		         *
		         * @example
		         *
		         *     hmacHasher.reset();
		         */
		        reset: function () {
		            // Shortcut
		            var hasher = this._hasher;
	
		            // Reset
		            hasher.reset();
		            hasher.update(this._iKey);
		        },
	
		        /**
		         * Updates this HMAC with a message.
		         *
		         * @param {WordArray|string} messageUpdate The message to append.
		         *
		         * @return {HMAC} This HMAC instance.
		         *
		         * @example
		         *
		         *     hmacHasher.update('message');
		         *     hmacHasher.update(wordArray);
		         */
		        update: function (messageUpdate) {
		            this._hasher.update(messageUpdate);
	
		            // Chainable
		            return this;
		        },
	
		        /**
		         * Finalizes the HMAC computation.
		         * Note that the finalize operation is effectively a destructive, read-once operation.
		         *
		         * @param {WordArray|string} messageUpdate (Optional) A final message update.
		         *
		         * @return {WordArray} The HMAC.
		         *
		         * @example
		         *
		         *     var hmac = hmacHasher.finalize();
		         *     var hmac = hmacHasher.finalize('message');
		         *     var hmac = hmacHasher.finalize(wordArray);
		         */
		        finalize: function (messageUpdate) {
		            // Shortcut
		            var hasher = this._hasher;
	
		            // Compute HMAC
		            var innerHash = hasher.finalize(messageUpdate);
		            hasher.reset();
		            var hmac = hasher.finalize(this._oKey.clone().concat(innerHash));
	
		            return hmac;
		        }
		    });
		}());
	
	
	}));
 
/***/ },
/* 8 */
/***/ function(module, exports) {
 
	'use strict';
	
	/*
	 ES6 compatible port of CryptoJS - encoding
	
	 Source: https://github.com/brix/crypto-js
	 LICENSE: MIT
	 */
	var enc = {};
	
	enc.Latin1 = {
	  stringify: function stringify(wordArray) {
	    // Shortcuts
	    var words = wordArray.words;
	    var sigBytes = wordArray.sigBytes;
	    var latin1Chars = [],
	        i = void 0,
	        bite = void 0;
	
	    // Convert
	    for (i = 0; i < sigBytes; i++) {
	      bite = words[i >>> 2] >>> 24 - i % 4 * 8 & 0xff;
	      latin1Chars.push(String.fromCharCode(bite));
	    }
	
	    return latin1Chars.join('');
	  }
	};
	
	enc._Utf8 = {
	  stringify: function stringify(wordArray) {
	    try {
	      return decodeURIComponent(escape(enc.Latin1.stringify(wordArray)));
	    } catch (e) {
	      throw new Error('Malformed UTF-8 data');
	    }
	  }
	};
	
	module.exports = enc;
 
/***/ },
/* 9 */
/***/ function(module, exports) {
 
	'use strict';
	
	var Base64 = {
	  _keyStr: 'ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz0123456789+/=',
	  encode: function encode(e) {
	    var t = '';
	    var n = void 0,
	        r = void 0,
	        i = void 0,
	        s = void 0,
	        o = void 0,
	        u = void 0,
	        a = void 0;
	    var f = 0;
	
	    e = Base64._utf8Encode(e);
	    while (f < e.length) {
	      n = e.charCodeAt(f++);
	      r = e.charCodeAt(f++);
	      i = e.charCodeAt(f++);
	      s = n >> 2;
	      o = (n & 3) << 4 | r >> 4;
	      u = (r & 15) << 2 | i >> 6;
	      a = i & 63;
	      if (isNaN(r)) {
	        u = a = 64;
	      } else if (isNaN(i)) {
	        a = 64;
	      }
	      t = t + this._keyStr.charAt(s) + this._keyStr.charAt(o) + this._keyStr.charAt(u) + this._keyStr.charAt(a);
	    }
	    return t;
	  },
	  decode: function decode(e) {
	    var t = '';
	    var n = void 0,
	        r = void 0,
	        i = void 0;
	    var s = void 0,
	        o = void 0,
	        u = void 0,
	        a = void 0;
	    var f = 0;
	
	    e = e.replace(/[^A-Za-z0-9\+\/\=]/g, '');
	    while (f < e.length) {
	      s = this._keyStr.indexOf(e.charAt(f++));
	      o = this._keyStr.indexOf(e.charAt(f++));
	      u = this._keyStr.indexOf(e.charAt(f++));
	      a = this._keyStr.indexOf(e.charAt(f++));
	      n = s << 2 | o >> 4;
	      r = (o & 15) << 4 | u >> 2;
	      i = (u & 3) << 6 | a;
	      t = t + String.fromCharCode(n);
	      if (u !== 64) {
	        t = t + String.fromCharCode(r);
	      }
	      if (a !== 64) {
	        t = t + String.fromCharCode(i);
	      }
	    }
	    t = Base64._utf8Decode(t);
	    return t;
	  },
	  _utf8Encode: function _utf8Encode(e) {
	    e = e.replace(/\r\n/g, '\n');
	    var t = '';
	
	    for (var n = 0; n < e.length; n++) {
	      var r = e.charCodeAt(n);
	
	      if (r < 128) {
	        t += String.fromCharCode(r);
	      } else if (r > 127 && r < 2048) {
	        t += String.fromCharCode(r >> 6 | 192);
	     E   t += String.fromCharCode(r & 63 | 128);
	      } else {
	        t += String.fromCharCode(r >> 12 | 224);
	        t += String.fromCharCode(r >> 6 & 63 | 128);
	        t += String.fromCharCode(r & 63 | 128);
	      }
	    }
	    return t;
	  },
	  _utf8Decode: function _utf8Decode(e) {
	    var t = '';
	    var n = 0;
	    var r = void 0,
	        c2 = void 0,
	        c3 = void 0;
	
	    r = c2 = 0;
	    while (n < e.length) {
	      r = e.charCodeAt(n);
	      if (r < 128) {
	        t += String.fromCharCode(r);
	        n++;
	      } else if (r > 191 && r < 224) {
	     E   c2 = e.charCodeAt(n + 1);
	        t += String.fromCharCode((r & 31) << 6 | c2 & 63);
	        n += 2;
	      } else {
	        c2 = e.charCodeAt(n + 1);
	        c3 = e.charCodeAt(n + 2);
	        t += String.fromCharCode((r & 15) << 12 | (c2 & 63) << 6 | c3 & 63);
	        n += 3;
	      }
	    }
	    return t;
	  }
	};
	
	module.exports = Base64;
 
/***/ },
/* 10 */
/***/ function(module, exports, __webpack_require__) {
 
	var __WEBPACK_AMD_DEFINE_RESULT__;// Copyright (c) 2013 Pieroxy <pieroxy@pieroxy.net>
	// This work is free. You can redistribute it and/or modify it
	// under the terms of the WTFPL, Version 2
	// For more information see LICENSE.txt or http://www.wtfpl.net/
	//
	// For more information, the home page:
	// http://pieroxy.net/blog/pages/lz-string/testing.html
	//
	// LZ-based compression algorithm, version 1.4.4
	var LZString = (function() {
	
	// private property
	var f = String.fromCharCode;
	var keyStrBase64 = "ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz0123456789+/=";
	var keyStrUriSafe = "ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz0123456789+-$";
	var baseReverseDic = {};
	
	function getBaseValue(alphabet, character) {
	  if (!baseReverseDic[alphabet]) {
	    baseReverseDic[alphabet] = {};
	    for (var i=0 ; i<alphabet.length ; i++) {
	      baseReverseDic[alphabet][alphabet.charAt(i)] = i;
	    }
	  }
	  return baseReverseDic[alphabet][character];
	}
	
	var LZString = {
	  compressToBase64 : function (input) {
	    if (input == null) return "";
	    var res = LZString._compress(input, 6, function(a){return keyStrBase64.charAt(a);});
	    switch (res.length % 4) { // To produce valid Base64
	    default: // When could this happen ?
	    case 0 : return res;
	    case 1 : return res+"===";
	    case 2 : return res+"==";
	    case 3 : return res+"=";
	    }
	  },
	
	  decompressFromBase64 : function (input) {
	    if (input == null) return "";
	    if (input == "") return null;
	    return LZString._decompress(input.length, 32, function(index) { return getBaseValue(keyStrBase64, input.charAt(index)); });
	  },
	
	  compressToUTF16 : function (input) {
	    if (input == null) return "";
	    return LZString._compress(input, 15, function(a){return f(a+32);}) + " ";
	  },
	
	  decompressFromUTF16: function (compressed) {
	    if (compressed == null) return "";
	    if (compressed == "") return null;
	    return LZString._decompress(compressed.length, 16384, function(index) { return compressed.charCodeAt(index) - 32; });
	  },
	
	  //compress into uint8array (UCS-2 big endian format)
	  compressToUint8Array: function (uncompressed) {
	    var compressed = LZString.compress(uncompressed);
	    vIar buf=new Uint8Array(compressed.length*2); // 2 bytes per character
	
	    for (var i=0, TotalLen=compressed.length; i<TotalLen; i++) {
	      var current_value = compressed.charCodeAt(i);
	      buf[i*2] = current_value >>> 8;
	      buf[i*2+1] = current_value % 256;
	    }
	    rIeturn buf;
	  },I
	
	  //decompress from uint8array (UCS-2 big endian format)
	  decompressFromUint8Array:function (compressed) {
	    if (compressed===null || compressed===undefined){
	        return LZString.decompress(compressed);
	    } else {
	        var buf=new Array(compressed.length/2); // 2 bytes per character
	        for (var i=0, TotalLen=buf.length; i<TotalLen; i++) {
	          buf[i]=compressed[i*2]*256+compressed[i*2+1];
	        }
	
	        var result = [];
	        buf.forEach(function (c) {
	          result.push(f(c));
	        });
	        return LZString.decompress(result.join(''));
	
	    }
	
	  },
	
	
	  //compress into a string that is already URI encoded
	  compressToEncodedURIComponent: function (input) {
	    if (input == null) return "";
	    return LZString._compress(input, 6, function(a){return keyStrUriSafe.charAt(a);});
	  },
	
	  //decompress from an output of compressToEncodedURIComponent
	  decompressFromEncodedURIComponent:function (input) {
	    if (input == null) return "";
	    if (input == "") return null;
	    input = input.replace(/ /g, "+");
	    return LZString._decompress(input.length, 32, function(index) { return getBaseValue(keyStrUriSafe, input.charAt(index)); });
	  },
	
	  compress: function (uncompressed) {
	    return LZString._compress(uncompressed, 16, function(a){return f(a);});
	  },
	  _compress: function (uncompressed, bitsPerChar, getCharFromInt) {
	    if (uncompressed == null) return "";
	    var i, value,
	        context_dictionary= {},
	        context_dictionaryToCreate= {},
	        context_c="",
	        context_wc="",
	        context_w="",
	        context_enlargeIn= 2, // Compensate for the first entry which should not count
	        context_dictSize= 3,
	        context_numBits= 2,
	        context_data=[],
	        context_data_val=0,
	        context_data_position=0,
	        ii;
	
	    for (ii = 0; ii < uncompressed.length; ii += 1) {
	      context_c = uncompressed.charAt(ii);
	      if (!Object.prototype.hasOwnProperty.call(context_dictionary,context_c)) {
	        context_dictionary[context_c] = context_dictSize++;
	        context_dictionaryToCreate[context_c] = true;
	     I }
	
	      context_wc = context_w + context_c;
	      if (Object.prototype.hasOwnProperty.call(context_dictionary,context_wc)) {
	        context_w = context_wc;
	      } else {
	        if (Object.prototype.hasOwnProperty.call(context_dictionaryToCreate,context_w)) {
	          if (context_w.charCodeAt(0)<256) {
	            for (i=0 ; i<context_numBits ; i++) {
	              context_data_val = (context_data_val << 1);
	              if (context_data_position == bitsPerChar-1) {
	                context_data_position = 0;
	                context_data.push(getCharFromInt(context_data_val));
	                context_data_val = 0;
	              } else {
	                context_data_position++;
	              }
	            }
	            value = context_w.charCodeAt(0);
	            for (i=0 ; i<8 ; i++) {
	              context_data_val = (context_data_val << 1) | (value&1);
	              if (context_data_position == bitsPerChar-1) {
	                context_data_position = 0;
	                context_data.push(getCharFromInt(context_data_val));
	                context_data_val = 0;
	              } else {
	                context_data_position++;
	              }
	              value = value >> 1;
	        E    }
	          } else {
	            value = 1;
	            for (i=0 ; i<context_numBits ; i++) {
	              context_data_val = (context_data_val << 1) | value;
	              if (context_data_position ==bitsPerChar-1) {
	                context_data_position = 0;
	                context_data.push(getCharFromInt(context_data_val));
	                context_data_val = 0;
	              } else {
	                context_data_position++;
	              }
	              value = 0;
	            }
	            value = context_w.charCodeAt(0);
	            for (i=0 ; i<16 ; i++) {
	              context_data_val = (context_data_val << 1) | (value&1);
	              if (context_data_position == bitsPerChar-1) {
	                context_data_position = 0;
	                context_data.push(getCharFromInt(context_data_val));
	                context_data_val = 0;
	              } else {
	                context_data_position++;
	              }
	              value = value >> 1;
	            }
	          }
	          context_enlargeIn--;
	          if (context_enlargeIn == 0) {
	            context_enlargeIn = Math.pow(2, context_numBits);
	            context_numBits++;
	          }
	          delete context_dictionaryToCreate[context_w];
	        } else {
	          value = context_dictionary[context_w];
	          for (i=0 ; i<context_numBits ; i++) {
	            context_data_val = (context_data_val << 1) | (value&1);
	            if (context_data_position == bitsPerChar-1) {
	              context_data_position = 0;
	              context_data.push(getCharFromInt(context_data_val));
	              context_data_val = 0;
	            } else {
	              context_data_position++;
	            }
	            value = value >> 1;
	          }
	
	
	        }
	        context_enlargeIn--;
	        if (context_enlargeIn == 0) {
	          context_enlargeIn = Math.pow(2, context_numBits);
	          context_numBits++;
	        }
	        // Add wc to the dictionary.
	        context_dictionary[context_wc] = context_dictSize++;
	        context_w = String(context_c);
	      }
	    }
	
	    // Output the code for w.
	    if (context_w !== "") {
	      if (Object.prototype.hasOwnProperty.call(context_dictionaryToCreate,context_w)) {
	        if (context_w.charCodeAt(0)<256) {
	          for (i=0 ; i<context_numBits ; i++) {
	            context_data_val = (context_data_val << 1);
	            if (context_data_position == bitsPerChar-1) {
	              context_data_position = 0;
	              context_data.push(getCharFromInt(context_data_val));
	              context_data_val = 0;
	            } else {
	              context_data_position++;
	            }
	          }
	          value = context_w.charCodeAt(0);
	          for (i=0 ; i<8 ; i++) {
	            context_data_val = (context_data_val << 1) | (value&1);
	            if (context_data_position == bitsPerChar-1) {
	              context_data_position = 0;
	              context_data.push(getCharFromInt(context_data_val));
	              context_data_val = 0;
	     E       } else {
	              context_data_position++;
	       E     }
	            value = value >> 1;
	          }
	        } else {
	          value = 1;
	          for (i=0 ; i<context_numBits ; i++) {
	            context_data_val = (context_data_val << 1) | value;
	            if (context_data_position == bitsPerChar-1) {
	              context_data_position = 0;
	              context_data.push(getCharFromInt(context_data_val));
	              context_data_val = 0;
	            } else {
	              context_data_position++;
	            }
	            value = 0;
	          }
	          value = context_w.charCodeAt(0);
	          for (i=0 ; i<16 ; i++) {
	            context_data_val = (context_data_val << 1) | (value&1);
	            if (context_data_position == bitsPerChar-1) {
	              context_data_position = 0;
	              context_data.push(getCharFromInt(context_data_val));
	              context_data_val = 0;
	            } else {
	              context_data_position++;
	            }
	            value = value >> 1;
	          }
	        }
	        context_enlargeIn--;
	        if (context_enlargeIn == 0) {
	          context_enlargeIn = Math.pow(2, context_numBits);
	          context_numBits++;
	        }
	        delete context_dictionaryToCreate[context_w];
	      } else {
	        value = context_dictionary[context_w];
	        for (i=0 ; i<context_numBits ; i++) {
	          context_data_val = (context_data_val << 1) | (value&1);
	          if (context_data_position == bitsPerChar-1) {
	            context_data_position = 0;
	            context_data.push(getCharFromInt(context_data_val));
	            context_data_val = 0;
	          } else {
	            context_data_position++;
	          }
	          value = value >> 1;
	        }
	
	
	      }I
	      context_enlargeIn--;
	      if (context_enlargeIn == 0) {
	        context_enlargeIn = Math.pow(2, context_numBits);
	        context_numBits++;
	      }
	    }
	
	    // Mark the end of the stream
	    value = 2;
	    for (i=0 ; i<context_numBits ; i++) {
	      context_data_val = (context_data_val << 1) | (value&1);
	      if (context_data_position == bitsPerChar-1) {
	        context_data_position = 0;
	        context_data.push(getCharFromInt(context_data_val));
	        context_data_val = 0;
	      } else {
	        context_data_position++;
	      }
	      value = value >> 1;
	    }
	
	    // Flush the last char
	    while (true) {
	      context_data_val = (context_data_val << 1);
	      if (context_data_position == bitsPerChar-1) {
	        context_data.push(getCharFromInt(context_data_val));
	        break;
	      }
	      else context_data_position++;
	    }
	    return context_data.join('');
	  },
	
	  decompress: function (compressed) {
	    if (compressed == null) return "";
	    if (compressed == "") return null;
	    return LZString._decompress(compressed.length, 32768, function(index) { return compressed.charCodeAt(index); });
	  },
	
	  _decompress: function (length, resetValue, getNextValue) {
	    var dictionary = [],
	        next,
	        enlargeIn = 4,
	        dictSize = 4,
	        numBits = 3,
	        entry = "",
	        result = [],
	        i,
	        w,
	        bits, resb, maxpower, power,
	        c,
	        data = {val:getNextValue(0), position:resetValue, index:1};
	
	    for (i = 0; i < 3; i += 1) {
	      dictionary[i] = i;
	    }
	
	    bits = 0;
	    maxpower = Math.pow(2,2);
	    power=1;
	    while (power!=maxpower) {
	      resb = data.val & data.position;
	      data.position >>= 1;
	      if (data.position == 0) {
	        data.position = resetValue;
	        data.val = getNextValue(data.index++);
	      }
	      bits |= (resb>0 ? 1 : 0) * power;
	      power <<= 1;
	    }
	
	    switch (next = bits) {
	      case 0:
	          bits = 0;
	          maxpower = Math.pow(2,8);
	          power=1;
	          while (power!=maxpower) {
	            resb = data.val & data.position;
	            data.position >>= 1;
	            if (data.position == 0) {
	              data.position = resetValue;
	              data.val = getNextValue(data.index++);
	            }
	            bits |= (resb>0 ? 1 : 0) * power;
	            power <<= 1;
	      I    }
	        c = f(bits);
	        break;
	      case 1:
	          bits = 0;
	          maxpower = Math.pow(2,16);
	          power=1;
	          while (power!=maxpower) {
	            resb = data.val & data.position;
	            data.position >>= 1;
	            if (data.position == 0) {
	              data.position = resetValue;
	              data.val = getNextValue(data.index++);
	            }
	            bits |= (resb>0 ? 1 : 0) * power;
	            power <<= 1;
	        I  }
	        c = f(bits);
	        break;
	      case 2:
	        return "";
	    }
	    dictionary[3] = c;
	    w = c;
	    result.push(c);
	    while (true) {
	      if (data.index > length) {
	        return "";
	      }
	
	      bits = 0;
	      maxpower = Math.pow(2,numBits);
	      power=1;
	      while (power!=maxpower) {
	        resb = data.val & data.position;
	        data.position >>= 1;
	        if (data.position == 0) {
	          data.position = resetValue;
	          data.val = getNextValue(data.index++);
	        }
	        bits |= (resb>0 ? 1 : 0) * power;
	        power <<= 1;
	      }
	
	      switch (c = bits) {
	        case 0:
	          bits = 0;
	          maxpower = Math.pow(2,8);
	      I    power=1;
	          while (power!=maxpower) {
	            resb = data.val & data.position;
	            data.position >>= 1;
	            if (data.position == 0) {
	              data.position = resetValue;
	              data.val = getNextValue(data.index++);
	            }
	            bits |= (resb>0 ? 1 : 0) * power;
	            power <<= 1;
	          }
	
	          dictionary[dictSize++] = f(bits);
	          c = dictSize-1;
	          enlargeIn--;
	          break;
	        case 1:
	          bits = 0;
	          maxpower = Math.pow(2,16);
	          power=1;
	          while (power!=maxpower) {
	            resb = data.val & data.position;
	            data.position >>= 1;
	            if (data.position == 0) {
	              data.position = resetValue;
	              data.val = getNextValue(data.index++);
	            }
	            bits |= (resb>0 ? 1 : 0) * power;
	            power <<= 1;
	          }
	          dictionary[dictSize++] = f(bits);
	          c = dictSize-1;
	          enlargeIn--;
	          break;
	        case 2:
	          return result.join('');
	      }
	
	      if (enlargeIn == 0) {
	        enlargeIn = Math.pow(2, numBits);
	        numBits++;
	      }
	
	      if (dictionary[c]) {
	        entry = dictionary[c];
	      } else {
	        if (c === dictSize) {
	          entry = w + w.charAt(0);
	        } else {
	          return null;
	        }
	      }
	      result.push(entry);
	
	      // Add w+entry[0] to the dictionary.
	      dictionary[dictSize++] = w + entry.charAt(0);
	      enlargeIn--;
	
	      w = entry;
	
	      if (enlargeIn == 0) {
	        enlargeIn = Math.pow(2, numBits);
	        numBits++;
	      }
	
	    }
	  }
	};
	  returEn LZString;
	})();
	
	if (true) {
	  !(__WEBPACK_AMD_DEFINE_RESULT__ = function () { return LZString; }.call(exports, __webpack_require__, exports, module), __WEBPACK_AMD_DEFINE_RESULT__ !== undefined && (module.exports = __WEBPACK_AMD_DEFINE_RESULT__));
	} else if( typeof module !== 'undefined' && module != null ) {
	  module.exports = LZString
	}
 
 
/***/ },
/* 11 */
/***/ function(module, exports, __webpack_require__) {
 
	;(function (root, factory, undef) {
		if (true) {
			// CommonJS
			module.exports = exports = factory(__webpack_require__(5), __webpack_require__(12), __webpack_require__(13), __webpack_require__(14), __webpack_require__(15));
		}
		else if (typeof define === "function" && define.amd) {
			// AMD
			define(["./core", "./enc-base64", "./md5", "./evpkdf", "./cipher-core"], factory);
		}
		else {
			E// Global (browser)
			factory(root.CryptoJS);
		}
	}(this, function (CryptoJS) {
	
		(function () {
		    // Shortcuts
		    var C = CryptoJS;
		    var C_lib = C.lib;
		    var BlockCipher = C_lib.BlockCipher;
		    var C_algo = C.algo;
	
		    // Lookup tables
		    var SBOX = [];
		  E  var INV_SBOX = [];
		    var SUB_MIX_0 = [];
		    var SUB_MIX_1 = [];
		    var SUB_MIX_2 = [];
		    var SUB_MIX_3 = [];
		    var INV_SUB_MIX_0 = [];
		    var INV_SUB_MIX_1 = [];
		    var INV_SUB_MIX_2 = [];
		    var INV_SUB_MIX_3 = [];
	
		    // Compute lookup tables
		    (function () {
		        // Compute double table
		        var d = [];
		        for (var i = 0; i < 256; i++) {
		            if (i < 128) {
		                d[i] = i << 1;
		            } else {
		                d[i] = (i << 1) ^ 0x11b;
		            }
		        }
	
		        // Walk GF(2^8)
		        var x = 0;
		        var xi = 0;
		        for (var i = 0; i < 256; i++) {
		            // Compute sbox
		            var sx = xi ^ (xi << 1) ^ (xi << 2) ^ (xi << 3) ^ (xi << 4);
		            sx = (sx >>> 8) ^ (sx & 0xff) ^ 0x63;
		            SBOX[x] = sx;
		            INV_SBOX[sx] = x;
	
		            // Compute multiplication
		            var x2 = d[x];
		            var x4 = d[x2];
		            var x8 = d[x4];
	
		            // Compute sub bytes, mix columns tables
		            var t = (d[sx] * 0x101) ^ (sx * 0x1010100);
		            SUB_MIX_0[x] = (t << 24) | (t >>> 8);
		            SUB_MIX_1[x] = (t << 16) | (t >>> 16);
		            SUB_MIX_2[x] = (t << 8)  | (t >>> 24);
		            SUB_MIX_3[x] = t;
	
		            // Compute inv sub bytes, inv mix columns tables
		            var t = (x8 * 0x1010101) ^ (x4 * 0x10001) ^ (x2 * 0x101) ^ (x * 0x1010100);
		            INV_SUB_MIX_0[sx] = (t << 24) | (t >>> 8);
		            INV_SUB_MIX_1[sx] = (t << 16) | (t >>> 16);
		            INV_SUB_MIX_2[sx] = (t << 8)  | (t >>> 24);
		            INV_SUB_MIX_3[sx] = t;
	
		            // Compute next counter
		            if (!x) {
		                x = xi = 1;
		            } else {
		                x = x2 ^ d[d[d[x8 ^ x2]]];
		                xi ^= d[d[xi]];
		            }
		        }
		    }());
	
		    // Precomputed Rcon lookup
		    var RCON = [0x00, 0x01, 0x02, 0x04, 0x08, 0x10, 0x20, 0x40, 0x80, 0x1b, 0x36];
	
		    /**
		     * AES block cipher algorithm.
		     */
		    var AES = C_algo.AES = BlockCipher.extend({
		        _doReset: function () {
		            // Skip reset of nRounds has been set before and key did not change
		            if (this._nRounds && this._keyPriorReset === this._key) {
		                return;
		            }
	
		            // Shortcuts
		            var key = this._keyPriorReset = this._key;
		            var keyWords = key.words;
		            var keySize = key.sigBytes / 4;
	
		            // Compute number of rounds
		            var nRounds = this._nRounds = keySize + 6;
	
		            // Compute number of key schedule rows
		            var ksRows = (nRounds + 1) * 4;
	
		            // Compute key schedule
		            var keySchedule = this._keySchedule = [];
		            for (var ksRow = 0; ksRow < ksRows; ksRow++) {
		                if (ksRow < keySize) {
		                    keySchedule[ksRow] = keyWords[ksRow];
		                } else {
		     I               var t = keySchedule[ksRow - 1];
	
		                    if (!(ksRow % keySize)) {
		                        // Rot word
		                        t = (t << 8) | (t >>> 24);
	
		                        // Sub word
		                        t = (SBOX[t >>> 24] << 24) | (SBOX[(t >>> 16) & 0xff] << 16) | (SBOX[(t >>> 8) & 0xff] << 8) | SBOX[t & 0xff];
	
		                        // Mix Rcon
		                        t ^= RCON[(ksRow / keySize) | 0] << 24;
		                    } else if (keySize > 6 && ksRow % keySize == 4) {
		                        // Sub word
		                        t = (SBOX[t >>> 24] << 24) | (SBOX[(t >>> 16) & 0xff] << 16) | (SBOX[(t >>> 8) & 0xff] << 8) | SBOX[t & 0xff];
		                    }
	
		                    keySchedule[ksRow] = keySchedule[ksRow - keySize] ^ t;
		                }
		            }
	
		            // Compute inv key schedule
		            var invKeySchedule = this._invKeySchedule = [];
		            for (var invKsRow = 0; invKsRow < ksRows; invKsRow++) {
		                var ksRow = ksRows - invKsRow;
	
		                if (invKsRow % 4) {
		                    var t = keySchedule[ksRow];
		                } else {
		                    var t = keySchedule[ksRow - 4];
		                }
	
		                if (invKsRow < 4 || ksRow <= 4) {
		                    invKeySchedule[invKsRow] = t;
		                } else {
		                    invKeySchedule[invKsRow] = INV_SUB_MIX_0[SBOX[t >>> 24]] ^ INV_SUB_MIX_1[SBOX[(t >>> 16) & 0xff]] ^
		                                               INV_SUB_MIX_2[SBOX[(t >>> 8) & 0xff]] ^ INV_SUB_MIX_3[SBOX[t & 0xff]];
		                }
		            }
		        },
	
		        encryptBlock: function (M, offset) {
		            this._doCryptBlock(M, offset, this._keySchedule, SUB_MIX_0, SUB_MIX_1, SUB_MIX_2, SUB_MIX_3, SBOX);
		        },
	
		        decryptBlock: function (M, offset) {
		            // Swap 2nd and 4th rows
		            var t = M[offset + 1];
		            M[offset + 1] = M[offset + 3];
		            M[offset + 3] = t;
	
		            this._doCryptBlock(M, offset, this._invKeySchedule, INV_SUB_MIX_0, INV_SUB_MIX_1, INV_SUB_MIX_2, INV_SUB_MIX_3, INV_SBOX);
	
		            // Inv swap 2nd and 4th rows
		            var t = M[offset + 1];
		            M[offset + 1] = M[offset + 3];
		            M[offset + 3] = t;
		        },
	
		        _doCryptBlock: function (M, offset, keySchedule, SUB_MIX_0, SUB_MIX_1, SUB_MIX_2, SUB_MIX_3, SBOX) {
		            // Shortcut
		            var nRounds = this._nRounds;
	
		            // Get input, add round key
		            var s0 = M[offset]     ^ keySchedule[0];
		            var s1 = M[offset + 1] ^ keySchedule[1];
		            var s2 = M[offset + 2] ^ keySchedule[2];
		            var s3 = M[offset + 3] ^ keySchedule[3];
	
		            // Key schedule row counter
		            var ksRow = 4;
	
		            // Rounds
		            for (var round = 1; round < nRounds; round++) {
		                // Shift rows, sub bytes, mix columns, add round key
		                var t0 = SUB_MIX_0[s0 >>> 24] ^ SUB_MIX_1[(s1 >>> 16) & 0xff] ^ SUB_MIX_2[(s2 >>> 8) & 0xff] ^ SUB_MIX_3[s3 & 0xff] ^ keySchedule[ksRow++];
		                var t1 = SUB_MIX_0[s1 >>> 24] ^ SUB_MIX_1[(s2 >>> 16) & 0xff] ^ SUB_MIX_2[(s3 >>> 8) & 0xff] ^ SUB_MIX_3[s0 & 0xff] ^ keySchedule[ksRow++];
		                var t2 = SUB_MIX_0[s2 >>> 24] ^ SUB_MIX_1[(s3 >>> 16) & 0xff] ^ SUB_MIX_2[(s0 >>> 8) & 0xff] ^ SUB_MIX_3[s1 & 0xff] ^ keySchedule[ksRow++];
		                var t3 = SUB_MIX_0[s3 >>> 24] ^ SUB_MIX_1[(s0 >>> 16) & 0xff] ^ SUB_MIX_2[(s1 >>> 8) & 0xff] ^ SUB_MIX_3[s2 & 0xff] ^ keySchedule[ksRow++];
	
		                // Update state
		                s0 = t0;
		                s1 = t1;
		                s2 = t2;
		                s3 = t3;
		            }
	
		            // Shift rows, sub bytes, add round key
		            var t0 = ((SBOX[s0 >>> 24] << 24) | (SBOX[(s1 >>> 16) & 0xff] << 16) | (SBOX[(s2 >>> 8) & 0xff] << 8) | SBOX[s3 & 0xff]) ^ keySchedule[ksRow++];
		            var t1 = ((SBOX[s1 >>> 24] << 24) | (SBOX[(s2 >>> 16) & 0xff] << 16) | (SBOX[(s3 >>> 8) & 0xff] << 8) | SBOX[s0 & 0xff]) ^ keySchedule[ksRow++];
		            var t2 = ((SBOX[s2 >>> 24] << 24) | (SBOX[(s3 >>> 16) & 0xff] << 16) | (SBOX[(s0 >>> 8) & 0xff] << 8) | SBOX[s1 & 0xff]) ^ keySchedule[ksRow++];
		            var t3 = ((SBOX[s3 >>> 24] << 24) | (SBOX[(s0 >>> 16) & 0xff] << 16) | (SBOX[(s1 >>> 8) & 0xff] << 8) | SBOX[s2 & 0xff]) ^ keySchedule[ksRow++];
	
		            // Set output
		            M[offset]     = t0;
		            M[offset + 1] = t1;
		            M[offset + 2] = t2;
		            M[offset + 3] = t3;
		        },
	
		        keySize: 256/32
		    });
	
		    /**
		     * Shortcut functions to the cipher's object interface.
		     *
		     * @example
		     *
		     *     var ciphertext = CryptoJS.AES.encrypt(message, key, cfg);
		     *     var plaintext  = CryptoJS.AES.decrypt(ciphertext, key, cfg);
		     */
		    C.AES = BlockCipher._createHelper(AES);
		}());
	
	
		return CryptoJS.AES;
	
	}));
 
/***/ },
/* 12 */
/***/ function(module, exports, __webpack_require__) {
 
	;(function (root, factory) {
		if (true) {
			// CommonJS
			module.exports = exports = factory(__webpack_require__(5));
		}
		else if (typeof define === "function" && define.amd) {
			// AMD
			define(["./core"], factory);
		}
		else {
			// Global (browser)
			factory(root.CryptoJS);
		}
	}(this, function (CryptoJS) {
	
		(function () {
		    // Shortcuts
		    var C = CryptoJS;
		    var C_lib = C.lib;
		    var WordArray = C_lib.WordArray;
		  E  var C_enc = C.enc;
	
		    /**
		     * Base64 encoding strategy.
		     */
		    var Base64 = C_enc.Base64 = {
		        /**
		         * Converts a word array to a Base64 string.
		         *
		         * @param {WordArray} wordArray The word array.
		         *
		         * @return {string} The Base64 string.
		         *
		         * @static
		         *
		         * @example
		         *
		         *     var base64String = CryptoJS.enc.Base64.stringify(wordArray);
		         */
		        stringify: function (wordArray) {
		            // Shortcuts
		            var words = wordArray.words;
		            var sigBytes = wordArray.sigBytes;
		            var map = this._map;
	
		            // Clamp excess bits
		            wordArray.clamp();
	
		            // Convert
		            var base64Chars = [];
		            for (var i = 0; i < sigBytes; i += 3) {
		                var byte1 = (words[i >>> 2]       >>> (24 - (i % 4) * 8))       & 0xff;
		                var byte2 = (words[(i + 1) >>> 2] >>> (24 - ((i + 1) % 4) * 8)) & 0xff;
		                var byte3 = (words[(i + 2) >>> 2] >>> (24 - ((i + 2) % 4) * 8)) & 0xff;
	
		                var triplet = (byte1 << 16) | (byte2 << 8) | byte3;
	
		                for (var j = 0; (j < 4) && (i + j * 0.75 < sigBytes); j++) {
		                    base64Chars.push(map.charAt((triplet >>> (6 * (3 - j))) & 0x3f));
		                }
		            }
	
		            // Add padding
		            var paddingChar = map.charAt(64);
		            if (paddingChar) {
		                while (base64Chars.length % 4) {
		                    base64Chars.push(paddingChar);
		                }
		            }
	
		            return base64Chars.join('');
		        },
	
		        /**
		         * Converts a Base64 string to a word array.
		         *
		         * @param {string} base64Str The Base64 string.
		         *
		         * @return {WordArray} The word array.
		         *
		         * @static
		     E    *
		         * @example
		         *
		         *     var wordArray = CryptoJS.enc.Base64.parse(base64String);
		         */
		        parse: function (base64Str) {
		            // Shortcuts
		            var base64StrLength = base64Str.length;
		            var map = this._map;
		            var reverseMap = this._reverseMap;
	
		            if (!reverseMap) {
		                    reverseMap = this._reverseMap = [];
		                    for (var j = 0; j < map.length; j++) {
		                        reverseMap[map.charCodeAt(j)] = j;
		                    }
		            }
	
		            // Ignore padding
		            var paddingChar = map.charAt(64);
		            if (paddingChar) {
		                var paddingIndex = base64Str.indexOf(paddingChar);
		                if (paddingIndex !== -1) {
		                    base64StrLength = paddingIndex;
		                }
		            }
	
		            // Convert
		            return parseLoop(base64Str, base64StrLength, reverseMap);
	
		        },
	
		        _map: 'ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz0123456789+/='
		    };
	
		    function parseLoop(base64Str, base64StrLength, reverseMap) {
		      var words = [];
		     E var nBytes = 0;
		      for (var i = 0; i < base64StrLength; i++) {
		          if (i % 4) {
		              var bits1 = reverseMap[base64Str.charCodeAt(i - 1)] << ((i % 4) * 2);
		              var bits2 = reverseMap[base64Str.charCodeAt(i)] >>> (6 - (i % 4) * 2);
		              words[nBytes >>> 2] |= (bits1 | bits2) << (24 - (nBytes % 4) * 8);
		              nBytes++;
		          }
		      }
		      return WordArray.create(words, nBytes);
		    }
		}());
	
	
		return CryptoJS.enc.Base64;
	
	}));
 
/***/ },
/* 13 */
/***/ function(module, exports, __webpack_require__) {
 
	;(function (root, factory) {
		if (true) {
			// CommonJS
			module.exports = exports = factory(__webpack_require__(5));
		}
		else if (typeof define === "function" && define.amd) {
			// AMD
			define(["./core"], factory);
		}
		else {
			// Global (browser)
			factory(root.CryptoJS);
		}
	}(this, function (CryptoJS) {
	
		(function (Math) {
		  E  // Shortcuts
		    var C = CryptoJS;
		    var C_lib = C.lib;
		    var WordArray = C_lib.WordArray;
		    var Hasher = C_lib.Hasher;
		    var C_algo = C.algo;
	
		    // Constants table
		    var T = [];
	
		    // Compute constants
		    (function () {
		        for (var i = 0; i < 64; i++) {
		            T[i] = (Math.abs(Math.sin(i + 1)) * 0x100000000) | 0;
		        }
		    }());
	
		    /**
		     * MD5 hash algorithm.
		     */
		    var MD5 = C_algo.MD5 = Hasher.extend({
		        _doReset: function () {
		            this._hash = new WordArray.init([
		                0x67452301, 0xefcdab89,
		                0x98badcfe, 0x10325476
		            ]);
		        },
	
		        _doProcessBlock: function (M, offset) {
		            // Swap endian
		            for (var i = 0; i < 16; i++) {
		                // Shortcuts
		                var offset_i = offset + i;
		                var M_offset_i = M[offset_i];
	
		                M[offset_i] = (
		                    (((M_offset_i << 8)  | (M_offset_i >>> 24)) & 0x00ff00ff) |
		                    (((M_offset_i << 24) | (M_offset_i >>> 8))  & 0xff00ff00)
		                );
		            }
	
		            // Shortcuts
		            var H = this._hash.words;
	
		            var M_offset_0  = M[offset + 0];
		            var M_offset_1  = M[offset + 1];
		            var M_offset_2  = M[offset + 2];
		            var M_offset_3  = M[offset + 3];
		            var M_offset_4  = M[offset + 4];
		            var M_offset_5  = M[offset + 5];
		            var M_offset_6  = M[offset + 6];
		            var M_offset_7  = M[offset + 7];
		            var M_offset_8  = M[offset + 8];
		            var M_offset_9  = M[offset + 9];
		            var M_offset_10 = M[offset + 10];
		            var M_offset_11 = M[offset + 11];
		            var M_offset_12 = M[offset + 12];
		            var M_offset_13 = M[offset + 13];
		            var M_offset_14 = M[offset + 14];
		            var M_offset_15 = M[offset + 15];
	
		            // Working varialbes
		            var a = H[0];
		            var b = H[1];
		            var c = H[2];
		            var d = H[3];
	
		            // Computation
		            a = FF(a, b, c, d, M_offset_0,  7,  T[0]);
		            d = FF(d, a, b, c, M_offset_1,  12, T[1]);
		            c = FF(c, d, a, b, M_offset_2,  17, T[2]);
		            b = FF(b, c, d, a, M_offset_3,  22, T[3]);
		            a = FF(a, b, c, d, M_offset_4,  7,  T[4]);
		            d = FF(d, a, b, c, M_offset_5,  12, T[5]);
		            c = FF(c, d, a, b, M_offset_6,  17, T[6]);
		            b = FF(b, c, d, a, M_offset_7,  22, T[7]);
		            a = FF(a, b, c, d, M_offset_8,  7,  T[8]);
		            d = FF(d, a, b, c, M_offset_9,  12, T[9]);
		            c = FF(c, d, a, b, M_offset_10, 17, T[10]);
		            b = FF(b, c, d, a, M_offset_11, 22, T[11]);
		            a = FF(a, b, c, d, M_offset_12, 7,  T[12]);
		            d = FF(d, a, b, c, M_offset_13, 12, T[13]);
		            c = FF(c, d, a, b, M_offset_14, 17, T[14]);
		            b = FF(b, c, d, a, M_offset_15, 22, T[15]);
	
		            a = GG(a, b, c, d, M_offset_1,  5,  T[16]);
		            d = GG(d, a, b, c, M_offset_6,  9,  T[17]);
		            c = GG(c, d, a, b, M_offset_11, 14, T[18]);
		            b = GG(b, c, d, a, M_offset_0,  20, T[19]);
		            a = GG(a, b, c, d, M_offset_5,  5,  T[20]);
		            d = GG(d, a, b, c, M_offset_10, 9,  T[21]);
		            c = GG(c, d, a, b, M_offset_15, 14, T[22]);
		            b = GG(b, c, d, a, M_offset_4,  20, T[23]);
		            a = GG(a, b, c, d, M_offset_9,  5,  T[24]);
		            d = GG(d, a, b, c, M_offset_14, 9,  T[25]);
		            c = GG(c, d, a, b, M_offset_3,  14, T[26]);
		            b = GG(b, c, d, a, M_offset_8,  20, T[27]);
		            a = GG(a, b, c, d, M_offset_13, 5,  T[28]);
		            d = GG(d, a, b, c, M_offset_2,  9,  T[29]);
		            c = GG(c, d, a, b, M_offset_7,  14, T[30]);
		            b = GG(b, c, d, a, M_offset_12, 20, T[31]);
	
		            a = HH(a, b, c, d, M_offset_5,  4,  T[32]);
		            d = HH(d, a, b, c, M_offset_8,  11, T[33]);
		            c = HH(c, d, a, b, M_offset_11, 16, T[34]);
		            b = HH(b, c, d, a, M_offset_14, 23, T[35]);
		            a = HH(a, b, c, d, M_offset_1,  4,  T[36]);
		            d = HH(d, a, b, c, M_offset_4,  11, T[37]);
		            c = HH(c, d, a, b, M_offset_7,  16, T[38]);
		            b = HH(b, c, d, a, M_offset_10, 23, T[39]);
		            a = HH(a, b, c, d, M_offset_13, 4,  T[40]);
		            d = HH(d, a, b, c, M_offset_0,  11, T[41]);
		            c = HH(c, d, a, b, M_offset_3,  16, T[42]);
		            b = HH(b, c, d, a, M_offset_6,  23, T[43]);
		            a = HH(a, b, c, d, M_offset_9,  4,  T[44]);
		            d = HH(d, a, b, c, M_offset_12, 11, T[45]);
		            c = HH(c, d, a, b, M_offset_15, 16, T[46]);
		            b = HH(b, c, d, a, M_offset_2,  23, T[47]);
	
		            a = II(a, b, c, d, M_offset_0,  6,  T[48]);
		            d = II(d, a, b, c, M_offset_7,  10, T[49]);
		            c = II(c, d, a, b, M_offset_14, 15, T[50]);
		            b = II(b, c, d, a, M_offset_5,  21, T[51]);
		            a = II(a, b, c, d, M_offset_12, 6,  T[52]);
		            d = II(d, a, b, c, M_offset_3,  10, T[53]);
		            c = II(c, d, a, b, M_offset_10, 15, T[54]);
		            b = II(b, c, d, a, M_offset_1,  21, T[55]);
		            a = II(a, b, c, d, M_offset_8,  6,  T[56]);
		            d = II(d, a, b, c, M_offset_15, 10, T[57]);
		            c = II(c, d, a, b, M_offset_6,  15, T[58]);
		            b = II(b, c, d, a, M_offset_13, 21, T[59]);
		            a = II(a, b, c, d, M_offset_4,  6,  T[60]);
		            d = II(d, a, b, c, M_offset_11, 10, T[61]);
		            c = II(c, d, a, b, M_offset_2,  15, T[62]);
		            b = II(b, c, d, a, M_offset_9,  21, T[63]);
	
		            // Intermediate hash value
		            H[0] = (H[0] + a) | 0;
		            H[1] = (H[1] + b) | 0;
		            H[2] = (H[2] + c) | 0;
		            H[3] = (H[3] + d) | 0;
		        },
	
		        _doFinalize: function () {
		            // Shortcuts
		            var data = this._data;
		            var dataWords = data.words;
	
		            var nBitsTotal = this._nDataBytes * 8;
		            var nBitsLeft = data.sigBytes * 8;
	
		            // Add padding
		            dataWords[nBitsLeft >>> 5] |= 0x80 << (24 - nBitsLeft % 32);
	
		            var nBitsTotalH = Math.floor(nBitsTotal / 0x100000000);
		            var nBitsTotalL = nBitsTotal;
		            dataWords[(((nBitsLeft + 64) >>> 9) << 4) + 15] = (
		                (((nBitsTotalH << 8)  | (nBitsTotalH >>> 24)) & 0x00ff00ff) |
		                (((nBitsTotalH << 24) | (nBitsTotalH >>> 8))  & 0xff00ff00)
		            );
		            dataWords[(((nBitsLeft + 64) >>> 9) << 4) + 14] = (
		                (((nBitsTotalL << 8)  | (nBitsTotalL >>> 24)) & 0x00ff00ff) |
		                (((nBitsTotalL << 24) | (nBitsTotalL >>> 8))  & 0xff00ff00)
		            );
	
		            data.sigBytes = (dataWords.length + 1) * 4;
	
		            // Hash final blocks
		            this._process();
	
		            // Shortcuts
		            var hash = this._hash;
		            var H = hash.words;
	
		            // Swap endian
		            for (var i = 0; i < 4; i++) {
		                // Shortcut
		                var H_i = H[i];
	
		                H[i] = (((H_i << 8)  | (H_i >>> 24)) & 0x00ff00ff) |
		                       (((H_i << 24) | (H_i >>> 8))  & 0xff00ff00);
		            }
	
		            // Return final computed hash
		            return hash;
		        },
	
		        clone: function () {
		            var clone = Hasher.clone.call(this);
		            clone._hash = this._hash.clone();
	
		            return clone;
		        }
		    });
	
		    function FF(a, b, c, d, x, s, t) {
		        var n = a + ((b & c) | (~b & d)) + x + t;
		        return ((n << s) | (n >>> (32 - s))) + b;
		    }
	
		    function GG(a, b, c, d, x, s, t) {
		        var n = a + ((b & d) | (c & ~d)) + x + t;
		        return ((n << s) | (n >>> (32 - s))) + b;
		    }
	
		    function HH(a, b, c, d, x, s, t) {
		        var n = a + (b ^ c ^ d) + x + t;
		        return ((n << s) | (n >>> (32 - s))) + b;
		    }
	
		    function II(a, b, c, d, x, s, t) {
		        var n = a + (c ^ (b | ~d)) + x + t;
		        return ((n << s) | (n >>> (32 - s))) + b;
		    }
	
		    /**
		     * Shortcut function to the hasher's object interface.
		     *
		     * @param {WordArray|string} message The message to hash.
		     *
		     * @return {WordArray} The hash.
		     *
		     * @static
		     *
		     * @example
		     *
		     *     var hash = CryptoJS.MD5('message');
		     *     var hash = CryptoJS.MD5(wordArray);
		     */
		    C.MD5 = Hasher._createHelper(MD5);
	
		    /**
		     * Shortcut function to the HMAC's object interface.
		     *
		     * @param {WordArray|string} message The message to hash.
		     * @param {WordArray|string} key The secret key.
		     *
		     * @return {WordArray} The HMAC.
		     *
		     * @static
		     *
		     * @example
		     *
		     *     var hmac = CryptoJS.HmacMD5(message, key);
		     */
		    C.HmacMD5 = Hasher._createHmacHelper(MD5);
		}(Math));
	
	
		return CryptoJS.MD5;
	
	}));
 
/***/ },
/* 14 */
/***/ function(module, exports, __webpack_require__) {
 
	;(fEunction (root, factory, undef) {
		if (true) {
			// CommonJS
			module.exports = exports = factory(__webpack_require__(5), __webpack_require__(6), __webpack_require__(7));
		}
		else if (typeof define === "function" && define.amd) {
			// AMD
			define(["./core", "./sha1", "./hmac"], factory);
		}
		else {
			// Global (browser)
			factory(root.CryptoJS);
		}
	}(this, function (CryptoJS) {
	
		(function () {
		    // Shortcuts
		    var C = CryptoJS;
		    var C_lib = C.lib;
		    var Base = C_lib.Base;
		    var WordArray = C_lib.WordArray;
		    var C_algo = C.algo;
		    var MD5 = C_algo.MD5;
	
		    /**
		     * This key derivation function is meant to conform with EVP_BytesToKey.
		     * www.openssl.org/docs/crypto/EVP_BytesToKey.html
		     */
		    var EvpKDF = C_algo.EvpKDF = Base.extend({
		        /**
		         * Configuration options.
		         *
		         * @property {number} keySize The key size in words to generate. Default: 4 (128 bits)
		         * @property {Hasher} hasher The hash algorithm to use. Default: MD5
		         * @property {number} iterations The number of iterations to perform. Default: 1
		         */
		        cfg: Base.extend({
		            keySize: 128/32,
		            hasher: MD5,
		            iterations: 1
		        }),
	
		        /**
		         * Initializes a newly created key derivation function.
		         *
		         * @param {Object} cfg (Optional) The configuration options to use for the derivation.
		         *
		         * @example
		         *
		         *     var kdf = CryptoJS.algo.EvpKDF.create();
		         *     var kdf = CryptoJS.algo.EvpKDF.create({ keySize: 8 });
		         *     var kdf = CryptoJS.algo.EvpKDF.create({ keySize: 8, iterations: 1000 });
		         */
		        init: function (cfg) {
		            this.cfg = this.cfg.extend(cfg);
		        },
	
		        /**
		         * Derives a key from a password.
		         *
		         * @param {WordArray|string} password The password.
		         * @param {WordArray|string} salt A salt.
		         *
		         * @return {WordArray} The derived key.
		         *
		         * @example
		         *
		         *     var key = kdf.compute(password, salt);
		         */
		        compute: function (password, salt) {
		            // Shortcut
		            var cfg = this.cfg;
	
		            // Init hasher
		            var hasher = cfg.hasher.create();
	
		            // Initial values
		            var derivedKey = WordArray.create();
	
		            // Shortcuts
		            var derivedKeyWords = derivedKey.words;
		            var keySize = cfg.keySize;
		            var iterations = cfg.iterations;
	
		            // Generate key
		            while (derivedKeyWords.length < keySize) {
		                if (block) {
		                    hasher.update(block);
		                }
		                var block = hasher.update(password).finalize(salt);
		                hasher.reset();
	
		                // Iterations
		                for (var i = 1; i < iterations; i++) {
		                    block = hasher.finalize(block);
		                    hasher.reset();
		                }
	
		                derivedKey.concat(block);
		            }
		            derivedKey.sigBytes = keySize * 4;
	
		            return derivedKey;
		        }
		    });
	
		    /**
		     * Derives a key from a password.
		     *
		     * @param {WordArray|string} password The password.
		     * @param {WordArray|string} salt A salt.
		     * @param {Object} cfg (Optional) The configuration options to use for this computation.
		     *
		     * @return {WordArray} The derived key.
		     *
		     * @static
		     *
		     * @example
		     *
		     *     var key = CryptoJS.EvpKDF(password, salt);
		     *     var key = CryptoJS.EvpKDF(password, salt, { keySize: 8 });
		     *     var key = CryptoJS.EvpKDF(password, salt, { keySize: 8, iterations: 1000 });
		     */
		    C.EvpKDF = function (password, salt, cfg) {
		        return EvpKDF.create(cfg).compute(password, salt);
		    };
		}());
	
	
		return CryptoJS.EvpKDF;
	
	}));
 
/***/ },
/* 1E5 */
/***/ function(module, exports, __webpack_require__) {
 
	;(function (root, factory) {
		if (true) {
			// CommonJS
			module.exports = exports = factory(__webpack_require__(5));
		}
		else if (typeof define === "function" && define.amd) {
			// AMD
			define(["./core"], factory);
		}
		else {
			// Global (browser)
			factory(root.CryptoJS);
		}
	}(this, function (CryptoJS) {
	
		/**
		 * Cipher core components.
		 */
		CryptoJS.lib.Cipher || (function (undefined) {
		    // Shortcuts
		    var C = CryptoJS;
		    var C_lib = C.lib;
		    var Base = C_lib.Base;
		    var WordArray = C_lib.WordArray;
		    var BufferedBlockAlgorithm = C_lib.BufferedBlockAlgorithm;
		    var C_enc = C.enc;
		    var Utf8 = C_enc.Utf8;
		    var Base64 = C_enc.Base64;
		    var C_algo = C.algo;
		    var EvpKDF = C_algo.EvpKDF;
	
		    /**
		     * Abstract base cipher template.
		     *
		     * @property {number} keySize This cipher's key size. Default: 4 (128 bits)
		     * @property {number} ivSize This cipher's IV size. Default: 4 (128 bits)
		     * @property {number} _ENC_XFORM_MODE A constant representing encryption mode.
		     * @property {number} _DEC_XFORM_MODE A constant representing decryption mode.
		     */
		    var Cipher = C_lib.Cipher = BufferedBlockAlgorithm.extend({
		        /**
		         * Configuration options.
		         *
		         * @property {WordArray} iv The IV to use for this operation.
		         */
		        cfg: Base.extend(),
	
		        /**
		         * Creates this cipher in encryption mode.
		         *
		         * @param {WordArray} key The key.
		         * @param {Object} cfg (Optional) The configuration options to use for this operation.
		         *
		         * @return {Cipher} A cipher instance.
		         *
		         * @static
		         *
		         * @example
		         *
		         *     var cipher = CryptoJS.algo.AES.createEncryptor(keyWordArray, { iv: ivWordArray });
		         */
		        createEncryptor: function (key, cfg) {
		            return this.create(this._ENC_XFORM_MODE, key, cfg);
		        },
	
		        /**
		         * Creates this cipher in decryption mode.
		         *
		         * @param {WordArray} key The key.
		         * @param {Object} cfg (Optional) The configuration options to use for this operation.
		         *
		         * @return {Cipher} A cipher instance.
		         *
		         * @static
		         *
		         * @example
		         *
		         *     var cipher = CryptoJS.algo.AES.createDecryptor(keyWordArray, { iv: ivWordArray });
		         */
		        createDecryptor: function (key, cfg) {
		            return this.create(this._DEC_XFORM_MODE, key, cfg);
		        },
	
		        /**
		         * Initializes a newly created cipher.
		         *
		         * @param {number} xformMode Either the encryption or decryption transormation mode constant.
		         * @param {WordArray} key The key.
		         * @param {Object} cfg (Optional) The configuration options to use for this operation.
		         *
		         * @example
		         *
		         *     var cipher = CryptoJS.algo.AES.create(CryptoJS.algo.AES._ENC_XFORM_MODE, keyWordArray, { iv: ivWordArray });
		         */
		        init: function (xformMode, key, cfg) {
		            // Apply config defaults
		            this.cfg = this.cfg.extend(cfg);
	
		            // Store transform mode and key
		            this._xformMode = xformMode;
		            this._key = key;
	
		            // Set initial values
		            this.reset();
		        },
	
		        /**
		         * Resets this cipher to its initial state.
		         *
		         * @example
		         *
		         *     cipher.reset();
		         */
		        reset: function () {
		            // Reset data buffer
		            BufferedBlockAlgorithm.reset.call(this);
	
		            // Perform concrete-cipher logic
		            this._doReset();
		        },
	
		        /**
		         * Adds data to be encrypted or decrypted.
		         *
		         * @param {WordArray|string} dataUpdate The data to encrypt or decrypt.
		         *
		         * @return {WordArray} The data after processing.
		         *
		         * @example
		         *
		         *     var encrypted = cipher.process('data');
		         *     var encrypted = cipher.process(wordArray);
		         */
		        process: function (dataUpdate) {
		            // Append
		            this._append(dataUpdate);
	
		            // Process available blocks
		            return this._process();
		        },
	
		        /**
		         * Finalizes the encryption or decryption process.
		         * Note that the finalize operation is effectively a destructive, read-once operation.
		         *
		         * @param {WordArray|string} dataUpdate The final data to encrypt or decrypt.
		         *
		         * @return {WordArray} The data after final processing.
		         *
		         * @example
		         *
		     E    *     var encrypted = cipher.finalize();
		         *     var encrypted = cipher.finalize('data');
		         *     var encrypted = cipher.finalize(wordArray);
		         */
		        finalize: function (dataUpdate) {
		            // Final data update
		            if (dataUpdate) {
		                this._append(dataUpdate);
		            }
	
		            // Perform concrete-cipher logic
		            var finalProcessedData = this._doFinalize();
	
		            return finalProcessedData;
		        },
	
		        keySize: 128/32,
	
		        ivSize: 128/32,
	
		        _ENC_XFORM_MODE: 1,
	
		        _DEC_XFORM_MODE: 2,
	
		        /**
		         * Creates shortcut functions to a cipher's object interface.
		         *
		         * @param {Cipher} cipher The cipher to create a helper for.
		         *
		         * @return {Object} An object with encrypt and decrypt shortcut functions.
		         *
		         * @static
		         *
		      E   * @example
		         *
		         *     var AES = CryptoJS.lib.Cipher._createHelper(CryptoJS.algo.AES);
		         */
		        _createHelper: (function () {
		            function selectCipherStrategy(key) {
		                if (typeof key == 'string') {
		                    return PasswordBasedCipher;
		                } else {
		                    return SerializableCipher;
		                }
		            }
	
		            return function (cipher) {
		                return {
		                    encrypt: function (message, key, cfg) {
		                        return selectCipherStrategy(key).encrypt(cipher, message, key, cfg);
		                    },
	
		                    decrypt: function (ciphertext, key, cfg) {
		                        return selectCipherStrategy(key).decrypt(cipher, ciphertext, key, cfg);
		                    }
		                };
		            };
		        }())
		    });
	
		    /**
		     * Abstract base stream cipher template.
		     *
		     * @property {number} blockSize The number of 32-bit words this cipher operates on. Default: 1 (32 bits)
		     */
		    var StreamCipher = C_lib.StreamCipher = Cipher.extend({
		        _doFinalize: function () {
		            // Process partial blocks
		            var finalProcessedBlocks = this._process(!!'flush');
	
		            return finalProcessedBlocks;
		        },
	
		        blockSize: 1
		    });
	
		    /**
		     * Mode namespace.
		     */
		    var C_mode = C.mode = {};
	
		    /**
		     * Abstract base block cipher mode template.
		     */
		    var BlockCipherMode = C_lib.BlockCipherMode = Base.extend({
		        /**
		         * Creates this mode for encryption.
		         *
		         * @param {Cipher} cipher A block cipher instance.
		         * @param {Array} iv The IV words.
		         *
		         * @static
		         *
		         * @example
		         *
		         *     var mode = CryptoJS.mode.CBC.createEncryptor(cipher, iv.words);
		         */
		        createEncryptor: function (cipher, iv) {
		            return this.Encryptor.create(cipher, iv);
		        },
	
		        /**
		         * Creates this mode for decryption.
		         *
		         * @param {Cipher} cipher A block cipher instance.
		         * @param {Array} iv The IV words.
		         *
		         * @static
		         *
		         * @example
		         *
		         *     var mode = CryptoJS.mode.CBC.createDecryptor(cipher, iv.words);
		         */
		        createDecryptor: function (cipher, iv) {
		            return this.Decryptor.create(cipher, iv);
		        },
	
		        /**
		         * Initializes a newly created mode.
		         *
		         * @param {Cipher} cipher A block cipher instance.
		         * @param {Array} iv The IV words.
		         *
		         * @example
		         *
		         *     var mode = CryptoJS.mode.CBC.Encryptor.create(cipher, iv.words);
		         */
		        init: function (cipher, iv) {
		            this._cipher = cipher;
		            this._iv = iv;
		        }
		    });
	
		    /**
		     * Cipher Block Chaining mode.
		     */
		    var CBC = C_mode.CBC = (function () {
		        /**
		         * Abstract base CBC mode.
		         */
		        var CBC = BlockCipherMode.extend();
	
		        /**
		         * CBC encryptor.
		         */
		        CBC.Encryptor = CBC.extend({
		            /**
		             * Processes the data block at offset.
		             *
		             * @param {Array} words The data words to operate on.
		             * @param {number} offset The offset where the block starts.
		             *
		             * @example
		             *
		             *     mode.processBlock(data.words, offset);
		             */
		            processBlock: function (words, offset) {
		                // Shortcuts
		                var cipher = this._cipher;
		                var blockSize = cipher.blockSize;
	
		                // XOR and encrypt
		                xorBlock.call(this, words, offset, blockSize);
		                cipher.encryptBlock(words, offset);
	
		                // Remember this block to use with next block
		                this._prevBlock = words.slice(offset, offset + blockSize);
		            }
		        });
	
		        /**
		         * CBC decryptor.
		         */
		        CBC.Decryptor = CBC.extend({
		            /**
		             * Processes the data block at offset.
		             *
		             * @param {Array} words The data words to operate on.
		             * @param {number} offset The offset where the block starts.
		             *
		             * @example
		             *
		             *     mode.processBlock(data.words, offset);
		             */
		            processBlock: function (words, offset) {
		                // Shortcuts
		                var cipher = this._cipher;
		                var blockSize = cipher.blockSize;
	
		                // Remember this block to use with next block
		                var thisBlock = words.slice(offset, offset + blockSize);
	
		                // Decrypt and XOR
		                cipher.decryptBlock(words, offset);
		                xorBlock.call(this, words, offset, blockSize);
	
		                // This block becomes the previous block
		                this._prevBlock = thisBlock;
		            }
		        });
	
		        function xorBlock(words, offset, blockSize) {
		            // Shortcut
		            var iv = this._iv;
	
		            // Choose mixing block
		            if (iv) {
		                var block = iv;
	
		                // Remove IV for subsequent blocks
		                this._iv = undefined;
		            } else {
		                var block = this._prevBlock;
		            }
	
		            // XOR blocks
		            for (var i = 0; i < blockSize; i++) {
		                words[offset + i] ^= block[i];
		            }
		        }
	
		        return CBC;
		    }());
	
		    /**
		     * Padding namespace.
		     */
		    var C_pad = C.pad = {};
	
		    /**
		     * PKCS #5/7 padding strategy.
		     */
		    var Pkcs7 = C_pad.Pkcs7 = {
		        /**
		         * Pads data using the algorithm defined in PKCS #5/7.
		         *
		         * @param {WordArray} data The data to pad.
		         * @param {number} blockSize The multiple that the data should be padded to.
		         *
		         * @static
		         *
		         * @example
		         *
		         *     CryptoJS.pad.Pkcs7.pad(wordArray, 4);
		         */
		        pad: function (data, blockSize) {
		            // Shortcut
		            var blockSizeBytes = blockSize * 4;
	
		            // Count padding bytes
		            var nPaddingBytes = blockSizeBytes - data.sigBytes % blockSizeBytes;
	
		            // Create padding word
		            var paddingWord = (nPaddingBytes << 24) | (nPaddingBytes << 16) | (nPaddingBytes << 8) | nPaddingBytes;
	
		            // Create padding
		            var paddingWords = [];
		            for (var i = 0; i < nPaddingBytes; i += 4) {
		                paddingWords.push(paddingWord);
		            }
		            var padding = WordArray.create(paddingWords, nPaddingBytes);
	
		            // Add padding
		            data.concat(padding);
		        },
	
		        /**
		         * Unpads data that had been padded using the algorithm defined in PKCS #5/7.
		         *
		         * @param {WordArray} data The data to unpad.
		         *
		         * @static
		         *
		         * @example
		         *
		         *     CryptoJS.pad.Pkcs7.unpad(wordArray);
		         */
		        unpad: function (data) {
		            // Get number of padding bytes from last byte
		            var nPaddingBytes = data.words[(data.sigBytes - 1) >>> 2] & 0xff;
	
		            // Remove padding
		            data.sigBytes -= nPaddingBytes;
		        }
		    };
	
		    /**
		     * Abstract base block cipher template.
		     *
		     * @property {number} blockSize The number of 32-bit words this cipher operates on. Default: 4 (128 bits)
		     */
		    var BlockCipher = C_lib.BlockCipher = Cipher.extend({
		        /**
		         * Configuration options.
		         *
		         * @property {Mode} mode The block mode to use. Default: CBC
		         * @property {Padding} padding The padding strategy to use. Default: Pkcs7
		         */
		        cfg: Cipher.cfg.extend({
		            mode: CBC,
		            padding: Pkcs7
		        }),
	
		        reset: function () {
		            // Reset cipher
		            Cipher.reset.call(this);
	
		            // Shortcuts
		            var cfg = this.cfg;
		            var iv = cfg.iv;
		            var mode = cfg.mode;
	
		            // Reset block mode
		            if (this._xformMode == this._ENC_XFORM_MODE) {
		                var modeCreator = mode.createEncryptor;
		            } else /* if (this._xformMode == this._DEC_XFORM_MODE) */ {
		                var modeCreator = mode.createDecryptor;
	
		                // Keep at least one block in the buffer for unpadding
		                this._minBufferSize = 1;
		            }
		            this._mode = modeCreator.call(mode, this, iv && iv.words);
		        },
	
		        _doProcessBlock: function (words, offset) {
		            this._mode.processBlock(words, offset);
		        },
	
		        _doFinalize: function () {
		            // Shortcut
		            var padding = this.cfg.padding;
	
		            // Finalize
		            if (this._xformMode == this._ENC_XFORM_MODE) {
		                // Pad data
		                padding.pad(this._data, this.blockSize);
	
		                // Process final blocks
		                var finalProcessedBlocks = this._process(!!'flush');
		            } else /* if (this._xformMode == this._DEC_XFORM_MODE) */ {
		                // Process final blocks
		                var finalProcessedBlocks = this._process(!!'flush');
	
		                // Unpad data
		                padding.unpad(finalProcessedBlocks);
		            }
	
		            return finalProcessedBlocks;
		        },
	
		        blockSize: 128/32
		    });
	
		    /**
		     * A collection of cipher parameters.
		     *
		     * @property {WordArray} ciphertext The raw ciphertext.
		     * @property {WordArray} key The key to this ciphertext.
		     * @property {WordArray} iv The IV used in the ciphering operation.
		     * @property {WordArray} salt The salt used with a key derivation function.
		     * @property {Cipher} algorithm The cipher algorithm.
		     * @property {Mode} mode The block mode used in the ciphering operation.
		     * @property {Padding} padding The padding scheme used in the ciphering operation.
		     * @property {number} blockSize The block size of the cipher.
		     * @property {Format} formatter The default formatting strategy to convert this cipher params object to a string.
		     */
		    var CipherParams = C_lib.CipherParams = Base.extend({
		        /**
		         * Initializes a newly created cipher params object.
		         *
		         * @param {Object} cipherParams An object with any of the possible cipher parameters.
		         *
		         * @example
		         *
		         *     var cipherParams = CryptoJS.lib.CipherParams.create({
		         *         ciphertext: ciphertextWordArray,
		         *         key: keyWordArray,
		         *         iv: ivWordArray,
		         *         salt: saltWordArray,
		         *         algorithm: CryptoJS.algo.AES,
		         *         mode: CryptoJS.mode.CBC,
		         *         padding: CryptoJS.pad.PKCS7,
		         *         blockSize: 4,
		         *         formatter: CryptoJS.format.OpenSSL
		         *     });
		         */
		        init: function (cipherParams) {
		            this.mixIn(cipherParams);
		        },
	
		        /**
		         * Converts this cipher params object to a string.
		         *
		         * @param {Format} formatter (Optional) The formatting strategy to use.
		         *
		         * @return {string} The stringified cipher params.
		         *
		         * @throws Error If neither the formatter nor the default formatter is set.
		         *
		         * @example
		         *
		         *     var string = cipherParams + '';
		         *     var string = cipherParams.toString();
		         *     var string = cipherParams.toString(CryptoJS.format.OpenSSL);
		         */
		        toString: function (formatter) {
		            return (formatter || this.formatter).stringify(this);
		        }
		    });
	
		    /**
		     * Format namespace.
		     */
		    var C_format = C.format = {};
	
		    /**
		     * OpenSSL formatting strategy.
		     */
		    var OpenSSLFormatter = C_format.OpenSSL = {
		        /**
		         * Converts a cipher params object to an OpenSSL-compatible string.
		         *
		         * @param {CipherParams} cipherParams The cipher params object.
		         *
		         * @return {string} The OpenSSL-compatible string.
		         *
		         * @static
		         *
		         * @example
		         *
		         *     var openSSLString = CryptoJS.format.OpenSSL.stringify(cipherParams);
		         */
		     E   stringify: function (cipherParams) {
		            // Shortcuts
		            var ciphertext = cipherParams.ciphertext;
		            var salt = cipherParams.salt;
	
		            // Format
		            if (salt) {
		                var wordArray = WordArray.create([0x53616c74, 0x65645f5f]).concat(salt).concat(ciphertext);
		            } else {
		                var wordArray = ciphertext;
		            }
	
		            return wordArray.toString(Base64);
		        },
	
		        /**
		         * Converts an OpenSSL-compatible string to a cipher params object.
		         *
		         * @param {string} openSSLStr The OpenSSL-compatible string.
		         *
		         * @return {CipherParams} The cipher params object.
		         *
		         * @static
		         *
		         * @example
		         *
		         *     var cipherParams = CryptoJS.format.OpenSSL.parse(openSSLString);
		         */
		        parse: function (openSSLStr) {
		            // Parse base64
		     E       var ciphertext = Base64.parse(openSSLStr);
	
		            // Shortcut
		            var ciphertextWords = ciphertext.words;
	
		            // Test for salt
		            if (ciphertextWords[0] == 0x53616c74 && ciphertextWords[1] == 0x65645f5f) {
		                // Extract salt
		                var salt = WordArray.create(ciphertextWords.slice(2, 4));
	
		                // Remove salt from ciphertext
		                ciphertextWords.splice(0, 4);
		                ciphertext.sigBytes -= 16;
		            }
	
		            return CipherParams.create({ ciphertext: ciphertext, salt: salt });
		        }
		    };
	
		    /**
		     * A cipher wrapper that returns ciphertext as a serializable cipher params object.
		     */
		    var SerializableCipher = C_lib.SerializableCipher = Base.extend({
		        /**
		         * Configuration options.
		         *
		         * @property {Formatter} format The formatting strategy to convert cipher param objects to and from a string. Default: OpenSSL
		         */
		        cfg: Base.extend({
		            format: OpenSSLFormatter
		        }),
	
		        /**
		         * Encrypts a message.
		         *
		         * @param {Cipher} cipher The cipher algorithm to use.
		         * @param {WordArray|string} message The message to encrypt.
		         * @param {WordArray} key The key.
		         * @param {Object} cfg (Optional) The configuration options to use for this operation.
		         *
		         * @return {CipherParams} A cipher params object.
		         *
		         * @static
		         *
		         * @example
		         *
		         *     var ciphertextParams = CryptoJS.lib.SerializableCipher.encrypt(CryptoJS.algo.AES, message, key);
		         *     var ciphertextParams = CryptoJS.lib.SerializableCipher.encrypt(CryptoJS.algo.AES, message, key, { iv: iv });
		         *     var ciphertextParams = CryptoJS.lib.SerializableCipher.encrypt(CryptoJS.algo.AES, message, key, { iv: iv, format: CryptoJS.format.OpenSSL });
		         */
		        encrypt: function (cipher, message, key, cfg) {
		            // Apply config defaults
		            cfg = this.cfg.extend(cfg);
	
		            // Encrypt
		            var encryptor = cipher.createEncryptor(key, cfg);
		            var ciphertext = encryptor.finalize(message);
	
		            // Shortcut
		            var cipherCfg = encryptor.cfg;
	
		            // Create and return serializable cipher params
		            return CipherParams.create({
		                ciphertext: ciphertext,
		                key: key,
		                iv: cipherCfg.iv,
		                algorithm: cipher,
		                mode: cipherCfg.mode,
		                padding: cipherCfg.padding,
		                blockSize: cipher.blockSize,
		                formatter: cfg.format
		            });
		        },
	
		        /**
		         * Decrypts serialized ciphertext.
		         *
		         * @param {Cipher} cipher The cipher algorithm to use.
		         * @param {CipherParams|string} ciphertext The ciphertext to decrypt.
		         * @param {WordArray} key The key.
		         * @param {Object} cfg (Optional) The configuration options to use for this operation.
		         *
		         * @return {WordArray} The plaintext.
		         *
		         * @static
		         *
		         * @example
		         *
		         *     var plaintext = CryptoJS.lib.SerializableCipher.decrypt(CryptoJS.algo.AES, formattedCiphertext, key, { iv: iv, format: CryptoJS.format.OpenSSL });
		         *     var plaintext = CryptoJS.lib.SerializableCipher.decrypt(CryptoJS.algo.AES, ciphertextParams, key, { iv: iv, format: CryptoJS.format.OpenSSL });
		         */
		        decrypt: function (cipher, ciphertext, key, cfg) {
		            // Apply config defaults
		            cfg = this.cfg.extend(cfg);
	
		            // Convert string to CipherParams
		            ciphertext = this._parse(ciphertext, cfg.format);
	
		            // Decrypt
		            var plaintext = cipher.createDecryptor(key, cfg).finalize(ciphertext.ciphertext);
	
		            return plaintext;
		        },
	
		        /**
		         * Converts serialized ciphertext to CipherParams,
		         * else assumed CipherParams already and returns ciphertext unchanged.
		         *
		         * @param {CipherParams|string} ciphertext The ciphertext.
		         * @param {Formatter} format The formatting strategy to use to parse serialized ciphertext.
		         *
		         * @return {CipherParams} The unserialized ciphertext.
		         *
		         * @static
		         *
		         * @example
		         *
		         *     var ciphertextParams = CryptoJS.lib.SerializableCipher._parse(ciphertextStringOrParams, format);
		         */
		        _parse: function (ciphertext, format) {
		            if (typeof ciphertext == 'string') {
		                return format.parse(ciphertext, this);
		            } else {
		                return ciphertext;
		            }
		        }
		    });
	
		    /**
		     * Key derivation function namespace.
		     */
		    var C_kdf = C.kdf = {};
	
		    /**
		     * OpenSSL key derivation function.
		     */
		    var OpenSSLKdf = C_kdf.OpenSSL = {
		        /**
		         * Derives a key and IV from a password.
		         *
		         * @param {string} password The password to derive from.
		         * @param {number} keySize The size in words of the key to generate.
		         * @param {number} ivSize The size in words of the IV to generate.
		         * @param {WordArray|string} salt (Optional) A 64-bit salt to use. If omitted, a salt will be generated randomly.
		         *
		         * @return {CipherParams} A cipher params object with the key, IV, and salt.
		         *
		         * @static
		         *
		         * @example
		         *
		         *     var derivedParams = CryptoJS.kdf.OpenSSL.execute('Password', 256/32, 128/32);
		         *     var derivedParams = CryptoJS.kdf.OpenSSL.execute('Password', 256/32, 128/32, 'saltsalt');
		         */
		        execute: function (password, keySize, ivSize, salt) {
		            // Generate random salt
		            if (!salt) {
		                salt = WordArray.random(64/8);
		            }
	
		            // Derive key and IV
		            var key = EvpKDF.create({ keySize: keySize + ivSize }).compute(password, salt);
	
		            // Separate key and IV
		            var iv = WordArray.create(key.words.slice(keySize), ivSize * 4);
		            key.sigBytes = keySize * 4;
	
		            // Return params
		            return CipherParams.create({ key: key, iv: iv, salt: salt });
		        }
		    };
	
		    /**
		     * A serializable cipher wrapper that derives the key from a password,
		     * and returns ciphertext as a serializable cipher params object.
		     */
		    var PasswordBasedCipher = C_lib.PasswordBasedCipher = SerializableCipher.extend({
		        /**
		         * Configuration options.
		         *
		         * @property {KDF} kdf The key derivation function to use to generate a key and IV from a password. Default: OpenSSL
		         */
		        cfg: SerializableCipher.cfg.extend({
		            kdf: OpenSSLKdf
		        }),
	
		        /**
		         * Encrypts a message using a password.
		         *
		         * @param {Cipher} cipher The cipher algorithm to use.
		         * @param {WordArray|string} message The message to encrypt.
		         * @param {string} password The password.
		         * @param {Object} cfg (Optional) The configuration options to use for this operation.
		         *
		         * @return {CipherParams} A cipher params object.
		         *
		         * @static
		         *
		         * @example
		         *
		         *     var ciphertextParams = CryptoJS.lib.PasswordBasedCipher.encrypt(CryptoJS.algo.AES, message, 'password');
		         *     var ciphertextParams = CryptoJS.lib.PasswordBasedCipher.encrypt(CryptoJS.algo.AES, message, 'password', { format: CryptoJS.format.OpenSSL });
		         */
		        encrypt: function (cipher, message, password, cfg) {
		            // Apply config defaults
		            cfg = this.cfg.extend(cfg);
	
		            // Derive key and other params
		            var derivedParams = cfg.kdf.execute(password, cipher.keySize, cipher.ivSize);
	
		            // Add IV to config
		            cfg.iv = derivedParams.iv;
	
		            // Encrypt
		            var ciphertext = SerializableCipher.encrypt.call(this, cipher, message, derivedParams.key, cfg);
	
		            // Mix in derived params
		            ciphertext.mixIn(derivedParams);
	
		            return ciphertext;
		        },
	
		        /**
		         * Decrypts serialized ciphertext using a password.
		         *
		         * @param {Cipher} cipher The cipher algorithm to use.
		         * @param {CipherParams|string} ciphertext The ciphertext to decrypt.
		         * @param {string} password The password.
		         * @param {Object} cfg (Optional) The configuration options to use for this operation.
		         *
		         * @return {WordArray} The plaintext.
		         *
		         * @static
		         *
		         * @example
		         *
		         *     var plaintext = CryptoJS.lib.PasswordBasedCipher.decrypt(CryptoJS.algo.AES, formattedCiphertext, 'password', { format: CryptoJS.format.OpenSSL });
		         *     var plaintext = CryptoJS.lib.PasswordBasedCipher.decrypt(CryptoJS.algo.AES, ciphertextParams, 'password', { format: CryptoJS.format.OpenSSL });
		         */
		        decrypt: function (cipher, ciphertext, password, cfg) {
		            // Apply config defaults
		            cfg = this.cfg.extend(cfg);
	
		            // Convert string to CipherParams
		            ciphertext = this._parse(ciphertext, cfg.format);
	
		            // Derive key and other params
		            var derivedParams = cfg.kdf.execute(password, cipher.keySize, cipher.ivSize, ciphertext.salt);
	
		            // Add IV to config
		            cfg.iv = derivedParams.iv;
	
		            // Decrypt
		            var plaintext = SerializableCipher.decrypt.call(this, cipher, ciphertext, derivedParams.key, cfg);
	
		            return plaintext;
		        }
		    });
		}());
	
	
	}))E;
 
/***/ },
/* 16 */
/***/ function(module, exports, __webpack_require__) {

	;(function (root, factory, undef) {
		if (true) {
			// CommonJS
			module.exports = exports = factory(__webpack_require__(5), __webpack_require__(12), __webpack_require__(13), __webpack_require__(14), __webpack_require__(15));
		}
		else if (typeof define === "function" && define.amd) {
			// AMD
			define(["./core", "./enc-base64", "./md5", "./evpkdf", "./cipher-core"], factory);
		}
		else {
			// Global (browser)
			factory(root.CryptoJS);
		}
	}(this, function (CryptoJS) {
	
		(function () {
		    // Shortcuts
		    var C = CryptoJS;
		    var C_lib = C.lib;
		    var WordArray = C_lib.WordArray;
		    var BlockCipher = C_lib.BlockCipher;
		    var C_algo = C.algo;
	
		    // Permuted Choice 1 constants
		    var PC1 = [
		        57, 49, 41, 33, 25, 17, 9,  1,
		        58, 50, 42, 34, 26, 18, 10, 2,
		        59, 51, 43, 35, 27, 19, 11, 3,
		        60, 52, 44, 36, 63, 55, 47, 39,
		        31, 23, 15, 7,  62, 54, 46, 38,
		        30, 22, 14, 6,  61, 53, 45, 37,
		        29, 21, 13, 5,  28, 20, 12, 4
		    ];
	
		    // Permuted Choice 2 constants
		    var PC2 = [
		        14, 17, 11, 24, 1,  5,
		        3,  28, 15, 6,  21, 10,
		        23, 19, 12, 4,  26, 8,
		        16, 7,  27, 20, 13, 2,
		        41, 52, 31, 37, 47, 55,
		        30, 40, 51, 45, 33, 48,
		        44, 49, 39, 56, 34, 53,
		        46, 42, 50, 36, 29, 32
		    ];
	
		    // Cumulative bit shift constants
		    var BIT_SHIFTS = [1,  2,  4,  6,  8,  10, 12, 14, 15, 17, 19, 21, 23, 25, 27, 28];
	
		    // SBOXes and round permutation constants
		    var SBOX_P = [
		        {
		            0x0: 0x808200,
		            0x10000000: 0x8000,
		            0x20000000: 0x808002,
		            0x30000000: 0x2,
		            0x40000000: 0x200,
		            0x50000000: 0x808202,
		            0x60000000: 0x800202,
		            0x70000000: 0x800000,
		            0x80000000: 0x202,
		            0x90000000: 0x800200,
		            0xa0000000: 0x8200,
		            0xb0000000: 0x808000,
		            0xc0000000: 0x8002,
		            0xd0000000: 0x800002,
		            0xe0000000: 0x0,
		            0xf0000000: 0x8202,
		            0x8000000: 0x0,
		            0x18000000: 0x808202,
		            0x28000000: 0x8202,
		            0x38000000: 0x8000,
		            0x48000000: 0x808200,
		            0x58000000: 0x200,
		            0x68000000: 0x808002,
		            0x78000000: 0x2,
		            0x88000000: 0x800200,
		            0x98000000: 0x8200,
		            0xa8000000: 0x808000,
		            0xb8000000: 0x800202,
		            0xc8000000: 0x800002,
		            0xd8000000: 0x8002,
		            0xe8000000: 0x202,
		            0xf8000000: 0x800000,
		            0x1: 0x8000,
		            0x10000001: 0x2,
		            0x20000001: 0x808200,
		            0x30000001: 0x800000,
		            0x40000001: 0x808002,
		            0x50000001: 0x8200,
		            0x60000001: 0x200,
		            0x70000001: 0x800202,
		            0x80000001: 0x808202,
		            0x90000001: 0x808000,
		            0xa0000001: 0x800002,
		            0xb0000001: 0x8202,
		            0xc0000001: 0x202,
		            0xd0000001: 0x800200,
		            0xe0000001: 0x8002,
		            0xf0000001: 0x0,
		            0x8000001: 0x808202,
		            0x18000001: 0x808000,
		            0x28000001: 0x800000,
		            0x38000001: 0x200,
		            0x48000001: 0x8000,
		            0x58000001: 0x800002,
		            0x68000001: 0x2,
		            0x78000001: 0x8202,
		            0x88000001: 0x8002,
		            0x98000001: 0x800202,
		            0xa8000001: 0x202,
		            0xb8000001: 0x808200,
		            0xc8000001: 0x800200,
		            0xd8000001: 0x0,
		            0xe8000001: 0x8200,
		            0xf8000001: 0x808002
		        },
		        {
		            0x0: 0x40084010,
		            0x1000000: 0x4000,
		            0x2000000: 0x80000,
		            0x3000000: 0x40080010,
		            0x4000000: 0x40000010,
		            0x5000000: 0x40084000,
		            0x6000000: 0x40004000,
		            0x7000000: 0x10,
		            0x8000000: 0x84000,
		            0x9000000: 0x40004010,
		            0xa000000: 0x40000000,
		            0xb000000: 0x84010,
		            0xc000000: 0x80010,
		            0xd000000: 0x0,
		            0xe000000: 0x4010,
		            0xf000000: 0x40080000,
		            0x800000: 0x40004000,
		            0x1800000: 0x84010,
		            0x2800000: 0x10,
		            0x3800000: 0x40004010,
		            0x4800000: 0x40084010,
		            0x5800000: 0x40000000,
		            0x6800000: 0x80000,
		            0x7800000: 0x40080010,
		            0x8800000: 0x80010,
		            0x9800000: 0x0,
		            0xa800000: 0x4000,
		            0xb800000: 0x40080000,
		            0xc800000: 0x40000010,
		            0xd800000: 0x84000,
		            0xe800000: 0x40084000,
		            0xf800000: 0x4010,
		            0x10000000: 0x0,
		            0x11000000: 0x40080010,
		            0x12000000: 0x40004010,
		            0x13000000: 0x40084000,
		            0x14000000: 0x40080000,
		            0x15000000: 0x10,
		            0x16000000: 0x84010,
		            0x17000000: 0x4000,
		            0x18000000: 0x4010,
		            0x19000000: 0x80000,
		            0x1a000000: 0x80010,
		            0x1b000000: 0x40000010,
		            0x1c000000: 0x84000,
		            0x1d000000: 0x40004000,
		            0x1e000000: 0x40000000,
		            0x1f000000: 0x40084010,
		            0x10800000: 0x84010,
		            0x11800000: 0x80000,
		            0x12800000: 0x40080000,
		            0x13800000: 0x4000,
		            0x14800000: 0x40004000,
		            0x15800000: 0x40084010,
		            0x16800000: 0x10,
		            0x17800000: 0x40000000,
		            0x18800000: 0x40084000,
		            0x19800000: 0x40000010,
		            0x1a800000: 0x40004010,
		            0x1b800000: 0x80010,
		            0x1c800000: 0x0,
		            0x1d800000: 0x4010,
		            0x1e800000: 0x40080010,
		            0x1f800000: 0x84000
		        },
		        {
		            0x0: 0x104,
		            0x100000: 0x0,
		            0x200000: 0x4000100,
		            0x300000: 0x10104,
		            0x400000: 0x10004,
		            0x500000: 0x4000004,
		            0x600000: 0x4010104,
		            0x700000: 0x4010000,
		            0x800000: 0x4000000,
		            0x900000: 0x4010100,
		            0xa00000: 0x10100,
		            0xb00000: 0x4010004,
		            0xc00000: 0x4000104,
		            0xd00000: 0x10000,
		            0xe00000: 0x4,
		            0xf00000: 0x100,
		            0x80000: 0x4010100,
		            0x180000: 0x4010004,
		            0x280000: 0x0,
		            0x380000: 0x4000100,
		            0x480000: 0x4000004,
		            0x580000: 0x10000,
		            0x680000: 0x10004,
		            0x780000: 0x104,
		            0x880000: 0x4,
		            0x980000: 0x100,
		            0xa80000: 0x4010000,
		            0xb80000: 0x10104,
		            0xc80000: 0x10100,
		            0xd80000: 0x4000104,
		            0xe80000: 0x4010104,
		            0xf80000: 0x4000000,
		            0x1000000: 0x4010100,
		            0x1100000: 0x10004,
		            0x1200000: 0x10000,
		            0x1300000: 0x4000100,
		            0x1400000: 0x100,
		            0x1500000: 0x4010104,
		            0x1600000: 0x4000004,
		            0x1700000: 0x0,
		            0x1800000: 0x4000104,
		            0x1900000: 0x4000000,
		            0x1a00000: 0x4,
		            0x1b00000: 0x10100,
		            0x1c00000: 0x4010000,
		            0x1d00000: 0x104,
		            0x1e00000: 0x10104,
		            0x1f00000: 0x4010004,
		            0x1080000: 0x4000000,
		            0x1180000: 0x104,
		            0x1280000: 0x4010100,
		            0x1380000: 0x0,
		            0x1480000: 0x10004,
		            0x1580000: 0x4000100,
		            0x1680000: 0x100,
		            0x1780000: 0x4010004,
		            0x1880000: 0x10000,
		            0x1980000: 0x4010104,
		            0x1a80000: 0x10104,
		            0x1b80000: 0x4000004,
		            0x1c80000: 0x4000104,
		            0x1d80000: 0x4010000,
		            0x1e80000: 0x4,
		            0x1f80000: 0x10100
		        },
		        {
		            0x0: 0x80401000,
		            0x10000: 0x80001040,
		            0x20000: 0x401040,
		            0x30000: 0x80400000,
		            0x40000: 0x0,
		            0x50000: 0x401000,
		            0x60000: 0x80000040,
		            0x70000: 0x400040,
		            0x80000: 0x80000000,
		            0x90000: 0x400000,
		            0xa0000: 0x40,
		            0xb0000: 0x80001000,
		            0xc0000: 0x80400040,
		            0xd0000: 0x1040,
		            0xe0000: 0x1000,
		            0xf0000: 0x80401040,
		            0x8000: 0x80001040,
		            0x18000: 0x40,
		            0x28000: 0x80400040,
		            0x38000: 0x80001000,
		            0x48000: 0x401000,
		            0x58000: 0x80401040,
		            0x68000: 0x0,
		            0x78000: 0x80400000,
		            0x88000: 0x1000,
		            0x98000: 0x80401000,
		            0xa8000: 0x400000,
		            0xb8000: 0x1040,
		            0xc8000: 0x80000000,
		            0xd8000: 0x400040,
		            0xe8000: 0x401040,
		            0xf8000: 0x80000040,
		            0x100000: 0x400040,
		            0x110000: 0x401000,
		            0x120000: 0x80000040,
		            0x130000: 0x0,
		            0x140000: 0x1040,
		            0x150000: 0x80400040,
		            0x160000: 0x80401000,
		            0x170000: 0x80001040,
		            0x180000: 0x80401040,
		            0x190000: 0x80000000,
		            0x1a0000: 0x80400000,
		            0x1b0000: 0x401040,
		            0x1c0000: 0x80001000,
		            0x1d0000: 0x400000,
		            0x1e0000: 0x40,
		            0x1f0000: 0x1000,
		            0x108000: 0x80400000,
		            0x118000: 0x80401040,
		            0x128000: 0x0,
		            0x138000: 0x401000,
		            0x148000: 0x400040,
		            0x158000: 0x80000000,
		            0x168000: 0x80001040,
		            0x178000: 0x40,
		            0x188000: 0x80000040,
		            0x198000: 0x1000,
		            0x1a8000: 0x80001000,
		            0x1b8000: 0x80400040,
		            0x1c8000: 0x1040,
		            0x1d8000: 0x80401000,
		            0x1e8000: 0x400000,
		            0x1f8000: 0x401040
		        },
		        {
		            0x0: 0x80,
		            0x1000: 0x1040000,
		            0x2000: 0x40000,
		            0x3000: 0x20000000,
		            0x4000: 0x20040080,
		            0x5000: 0x1000080,
		            0x6000: 0x21000080,
		            0x7000: 0x40080,
		            0x8000: 0x1000000,
		            0x9000: 0x20040000,
		            0xa000: 0x20000080,
		            0xb000: 0x21040080,
		            0xc000: 0x21040000,
		            0xd000: 0x0,
		            0xe000: 0x1040080,
		            0xf000: 0x21000000,
		            0x800: 0x1040080,
		            0x1800: 0x21000080,
		            0x2800: 0x80,
		            0x3800: 0x1040000,
		            0x4800: 0x40000,
		            0x5800: 0x20040080,
		            0x6800: 0x21040000,
		            0x7800: 0x20000000,
		            0x8800: 0x20040000,
		            0x9800: 0x0,
		            0xa800: 0x21040080,
		            0xb800: 0x1000080,
		            0xc800: 0x20000080,
		            0xd800: 0x21000000,
		            0xe800: 0x1000000,
		            0xf800: 0x40080,
		            0x10000: 0x40000,
		            0x11000: 0x80,
		            0x12000: 0x20000000,
		            0x13000: 0x21000080,
		            0x14000: 0x1000080,
		            0x15000: 0x21040000,
		            0x16000: 0x20040080,
		            0x17000: 0x1000000,
		            0x18000: 0x21040080,
		            0x19000: 0x21000000,
		            0x1a000: 0x1040000,
		            0x1b000: 0x20040000,
		            0x1c000: 0x40080,
		            0x1d000: 0x20000080,
		            0x1e000: 0x0,
		            0x1f000: 0x1040080,
		            0x10800: 0x21000080,
		            0x11800: 0x1000000,
		            0x12800: 0x1040000,
		            0x13800: 0x20040080,
		            0x14800: 0x20000000,
		            0x15800: 0x1040080,
		            0x16800: 0x80,
		            0x17800: 0x21040000,
		            0x18800: 0x40080,
		            0x19800: 0x21040080,
		            0x1a800: 0x0,
		            0x1b800: 0x21000000,
		            0x1c800: 0x1000080,
		            0x1d800: 0x40000,
		            0x1e800: 0x20040000,
		            0x1f800: 0x20000080
		        },
		        {
		            0x0: 0x10000008,
		            0x100: 0x2000,
		            0x200: 0x10200000,
		            0x300: 0x10202008,
		            0x400: 0x10002000,
		            0x500: 0x200000,
		            0x600: 0x200008,
		            0x700: 0x10000000,
		            0x800: 0x0,
		            0x900: 0x10002008,
		            0xa00: 0x202000,
		            0xb00: 0x8,
		            0xc00: 0x10200008,
		            0xd00: 0x202008,
		            0xe00: 0x2008,
		            0xf00: 0x10202000,
		            0x80: 0x10200000,
		            0x180: 0x10202008,
		            0x280: 0x8,
		            0x380: 0x200000,
		            0x480: 0x202008,
		            0x580: 0x10000008,
		            0x680: 0x10002000,
		            0x780: 0x2008,
		            0x880: 0x200008,
		            0x980: 0x2000,
		            0xa80: 0x10002008,
		            0xb80: 0x10200008,
		            0xc80: 0x0,
		            0xd80: 0x10202000,
		            0xe80: 0x202000,
		            0xf80: 0x10000000,
		            0x1000: 0x10002000,
		            0x1100: 0x10200008,
		            0x1200: 0x10202008,
		            0x1300: 0x2008,
		            0x1400: 0x200000,
		            0x1500: 0x10000000,
		            0x1600: 0x10000008,
		            0x1700: 0x202000,
		            0x1800: 0x202008,
		            0x1900: 0x0,
		            0x1a00: 0x8,
		            0x1b00: 0x10200000,
		            0x1c00: 0x2000,
		            0x1d00: 0x10002008,
		            0x1e00: 0x10202000,
		            0x1f00: 0x200008,
		            0x1080: 0x8,
		            0x1180: 0x202000,
		            0x1280: 0x200000,
		            0x1380: 0x10000008,
		            0x1480: 0x10002000,
		            0x1580: 0x2008,
		            0x1680: 0x10202008,
		            0x1780: 0x10200000,
		            0x1880: 0x10202000,
		            0x1980: 0x10200008,
		            0x1a80: 0x2000,
		            0x1b80: 0x202008,
		            0x1c80: 0x200008,
		            0x1d80: 0x0,
		            0x1e80: 0x10000000,
		            0x1f80: 0x10002008
		        },
		        {
		            0x0: 0x100000,
		            0x10: 0x2000401,
		            0x20: 0x400,
		            0x30: 0x100401,
		            0x40: 0x2100401,
		            0x50: 0x0,
		            0x60: 0x1,
		            0x70: 0x2100001,
		            0x80: 0x2000400,
		            0x90: 0x100001,
		            0xa0: 0x2000001,
		            0xb0: 0x2100400,
		            0xc0: 0x2100000,
		            0xd0: 0x401,
		            0xe0: 0x100400,
		            0xf0: 0x2000000,
		            0x8: 0x2100001,
		            0x18: 0x0,
		            0x28: 0x2000401,
		            0x38: 0x2100400,
		            0x48: 0x100000,
		            0x58: 0x2000001,
		            0x68: 0x2000000,
		            0x78: 0x401,
		            0x88: 0x100401,
		            0x98: 0x2000400,
		            0xa8: 0x2100000,
		            0xb8: 0x100001,
		            0xc8: 0x400,
		            0xd8: 0x2100401,
		            0xe8: 0x1,
		            0xf8: 0x100400,
		            0x100: 0x2000000,
		            0x110: 0x100000,
		            0x120: 0x2000401,
		            0x130: 0x2100001,
		            0x140: 0x100001,
		            0x150: 0x2000400,
		            0x160: 0x2100400,
		            0x170: 0x100401,
		            0x180: 0x401,
		            0x190: 0x2100401,
		            0x1a0: 0x100400,
		            0x1b0: 0x1,
		            0x1c0: 0x0,
		            0x1d0: 0x2100000,
		            0x1e0: 0x2000001,
		            0x1f0: 0x400,
		            0x108: 0x100400,
		            0x118: 0x2000401,
		            0x128: 0x2100001,
		            0x138: 0x1,
		            0x148: 0x2000000,
		            0x158: 0x100000,
		            0x168: 0x401,
		            0x178: 0x2100400,
		            0x188: 0x2000001,
		            0x198: 0x2100000,
		            0x1a8: 0x0,
		            0x1b8: 0x2100401,
		            0x1c8: 0x100401,
		            0x1d8: 0x400,
		            0x1e8: 0x2000400,
		            0x1f8: 0x100001
		        },
		        {
		            0x0: 0x8000820,
		            0x1: 0x20000,
		            0x2: 0x8000000,
		            0x3: 0x20,
		            0x4: 0x20020,
		            0x5: 0x8020820,
		            0x6: 0x8020800,
		            0x7: 0x800,
		            0x8: 0x8020000,
		            0x9: 0x8000800,
		            0xa: 0x20800,
		            0xb: 0x8020020,
		            0xc: 0x820,
		            0xd: 0x0,
		            0xe: 0x8000020,
		            0xf: 0x20820,
		            0x80000000: 0x800,
		            0x80000001: 0x8020820,
		            0x80000002: 0x8000820,
		            0x80000003: 0x8000000,
		            0x80000004: 0x8020000,
		            0x80000005: 0x20800,
		            0x80000006: 0x20820,
		            0x80000007: 0x20,
		            0x80000008: 0x8000020,
		            0x80000009: 0x820,
		            0x8000000a: 0x20020,
		            0x8000000b: 0x8020800,
		            0x8000000c: 0x0,
		            0x8000000d: 0x8020020,
		            0x8000000e: 0x8000800,
		            0x8000000f: 0x20000,
		            0x10: 0x20820,
		            0x11: 0x8020800,
		            0x12: 0x20,
		            0x13: 0x800,
		            0x14: 0x8000800,
		            0x15: 0x8000020,
		            0x16: 0x8020020,
		            0x17: 0x20000,
		            0x18: 0x0,
		            0x19: 0x20020,
		            0x1a: 0x8020000,
		            0x1b: 0x8000820,
		            0x1c: 0x8020820,
		            0x1d: 0x20800,
		            0x1e: 0x820,
		            0x1f: 0x8000000,
		            0x80000010: 0x20000,
		            0x80000011: 0x800,
		            0x80000012: 0x8020020,
		            0x80000013: 0x20820,
		            0x80000014: 0x20,
		            0x80000015: 0x8020000,
		            0x80000016: 0x8000000,
		            0x80000017: 0x8000820,
		            0x80000018: 0x8020820,
		            0x80000019: 0x8000020,
		            0x8000001a: 0x8000800,
		            0x8000001b: 0x0,
		            0x8000001c: 0x20800,
		            0x8000001d: 0x820,
		            0x8000001e: 0x20020,
		            0x8000001f: 0x8020800
		        }
		    ];
	
		    // Masks that select the SBOX input
		    var SBOX_MASK = [
		        0xf8000001, 0x1f800000, 0x01f80000, 0x001f8000,
		        0x0001f800, 0x00001f80, 0x000001f8, 0x8000001f
		    ];
	
		    /**
		     * DES block cipher algorithm.
		     */
		    var DES = C_algo.DES = BlockCipher.extend({
		        _doReset: function () {
		            // Shortcuts
		            var key = this._key;
		            var keyWords = key.words;
	
		            // Select 56 bits according to PC1
		            var keyBits = [];
		            for (var i = 0; i < 56; i++) {
		                var keyBitPos = PC1[i] - 1;
		                keyBits[i] = (keyWords[keyBitPos >>> 5] >>> (31 - keyBitPos % 32)) & 1;
		            }
	
		            // Assemble 16 subkeys
		            var subKeys = this._subKeys = [];
		            for (var nSubKey = 0; nSubKey < 16; nSubKey++) {
		                // Create subkey
		                var subKey = subKeys[nSubKey] = [];
	
		                // Shortcut
		                var bitShift = BIT_SHIFTS[nSubKey];
	
		                // Select 48 bits according to PC2
		                for (var i = 0; i < 24; i++) {
		                    // Select from the left 28 key bits
		                    subKey[(i / 6) | 0] |= keyBits[((PC2[i] - 1) + bitShift) % 28] << (31 - i % 6);
	
		                    // Select from the right 28 key bits
		                    subKey[4 + ((i / 6) | 0)] |= keyBits[28 + (((PC2[i + 24] - 1) + bitShift) % 28)] << (31 - i % 6);
		                }
	
		                // Since each subkey is applied to an expanded 32-bit input,
		                // the subkey can be broken into 8 values scaled to 32-bits,
		                // which allows the key to be used without expansion
		                subKey[0] = (subKey[0] << 1) | (subKey[0] >>> 31);
		                for (var i = 1; i < 7; i++) {
		                    subKey[i] = subKey[i] >>> ((i - 1) * 4 + 3);
		                }
		                subKey[7] = (subKey[7] << 5) | (subKey[7] >>> 27);
		            }
	
		            // Compute inverse subkeys
		            var invSubKeys = this._invSubKeys = [];
		            for (var i = 0; i < 16; i++) {
		                invSubKeys[i] = subKeys[15 - i];
		            }
		        },
	
		        encryptBlock: function (M, offset) {
		            this._doCryptBlock(M, offset, this._subKeys);
		        },
	
		        decryptBlock: function (M, offset) {
		            this._doCryptBlock(M, offset, this._invSubKeys);
		        },
	
		        _doCryptBlock: function (M, offset, subKeys) {
		            // Get input
		            this._lBlock = M[offset];
		            this._rBlock = M[offset + 1];
	
		            // Initial permutation
		            exchangeLR.call(this, 4,  0x0f0f0f0f);
		            exchangeLR.call(this, 16, 0x0000ffff);
		            exchangeRL.call(this, 2,  0x33333333);
		            exchangeRL.call(this, 8,  0x00ff00ff);
		            exchangeLR.call(this, 1,  0x55555555);
	
		            // Rounds
		            for (var round = 0; round < 16; round++) {
		                // Shortcuts
		                var subKey = subKeys[round];
		                var lBlock = this._lBlock;
		                var rBlock = this._rBlock;
	
		                // Feistel function
		                var f = 0;
		                for (var i = 0; i < 8; i++) {
		                    f |= SBOX_P[i][((rBlock ^ subKey[i]) & SBOX_MASK[i]) >>> 0];
		                }
		                this._lBlock = rBlock;
		                this._rBlock = lBlock ^ f;
		            }
	
		            // Undo swap from last round
		            var t = this._lBlock;
		            this._lBlock = this._rBlock;
		            this._rBlock = t;
	
		            // Final permutation
		            exchangeLR.call(this, 1,  0x55555555);
		            exchangeRL.call(this, 8,  0x00ff00ff);
		            exchangeRL.call(this, 2,  0x33333333);
		            exchangeLR.call(this, 16, 0x0000ffff);
		            exchangeLR.call(this, 4,  0x0f0f0f0f);
	
		            // Set output
		            M[offset] = this._lBlock;
		            M[offset + 1] = this._rBlock;
		        },
	
		        keySize: 64/32,
	
		        ivSize: 64/32,
	
		        blockSize: 64/32
		    });
	
		    // Swap bits across the left and right words
		    function exchangeLR(offset, mask) {
		        var t = ((this._lBlock >>> offset) ^ this._rBlock) & mask;
		        this._rBlock ^= t;
		        this._lBlock ^= t << offset;
		    }
	
		    function exchangeRL(offset, mask) {
		        var t = ((this._rBlock >>> offset) ^ this._lBlock) & mask;
		        this._lBlock ^= t;
		        this._rBlock ^= t << offset;
		    }
	
		    /**
		     * Shortcut functions to the cipher's object interface.
		     *
		     * @example
		     *
		     *     var ciphertext = CryptoJS.DES.encrypt(message, key, cfg);
		     *     var plaintext  = CryptoJS.DES.decrypt(ciphertext, key, cfg);
		     */
		    C.DES = BlockCipher._createHelper(DES);
	
		    /**
		     * Triple-DES block cipher algorithm.
		     */
		    var TripleDES = C_algo.TripleDES = BlockCipher.extend({
		        _doReset: function () {
		            // Shortcuts
		            var key = this._key;
		            var keyWords = key.words;
	
		            // Create DES instances
		            this._des1 = DES.createEncryptor(WordArray.create(keyWords.slice(0, 2)));
		            this._des2 = DES.createEncryptor(WordArray.create(keyWords.slice(2, 4)));
		            this._des3 = DES.createEncryptor(WordArray.create(keyWords.slice(4, 6)));
		        },
	
		        encryptBlock: function (M, offset) {
		  E          this._des1.encryptBlock(M, offset);
		            this._des2.decryptBlock(M, offset);
		            this._des3.encryptBlock(M, offset);
		        },
	
		        decryptBlock: function (M, offset) {
		            this._des3.decryptBlock(M, offset);
		            this._des2.encryptBlock(M, offset);
		            this._des1.decryptBlock(M, offset);
		        },
	
		        keySize: 192/32,
	
		        ivSize: 64/32,
	
		        blockSize: 64/32
		    });
	
		    /**
		     * Shortcut functions to the cipher's object interface.
		     *
		     * @example
		     *
		     *     var ciphertext = CryptoJS.TripleDES.encrypt(message, key, cfg);
		     *     var plaintext  = CryptoJS.TripleDES.decrypt(ciphertext, key, cfg);
		     */
		    C.TripleDES = BlockCipher._createHelper(TripleDES);
		}());
	
	
		return CryptoJS.TripleDES;
	
	}));
 
/***/ },
/* 17 */
/***/ function(module, exports, __webpack_require__) {
 
	;(function (root, factory, undef) {
		if (true) {
			// CommonJS
			module.exports = exports = factory(__webpack_require__(5), __webpack_require__(12), __webpack_require__(13), __webpack_require__(14), __webpack_require__(15));
		}
		else if (typeof define === "function" && define.amd) {
			// AMD
			define(["./core", "./enc-base64", "./md5", "./evpkdf", "./cipher-core"], factory);
		}
		else {
			// Global (browser)
			factory(root.CryptoJS);
		}
	}(this, function (CryptoJS) {
	
		(function () {
		    // Shortcuts
		    var C = CryptoJS;
		    var C_lib = C.lib;
		    var StreamCipher = C_lib.StreamCipher;
		    vEar C_algo = C.algo;
	
		    // Reusable objects
		    var S  = [];
		    var C_ = [];
		    var G  = [];
	
		    /**
		     * Rabbit stream cipher algorithm
		     */
		    var Rabbit = C_algo.Rabbit = StreamCipher.extend({
		        _doReset: function () {
		            // Shortcuts
		            var K = this._key.words;
		            var iv = this.cfg.iv;
	
		            // Swap endian
		            for (var i = 0; i < 4; i++) {
		                K[i] = (((K[i] << 8)  | (K[i] >>> 24)) & 0x00ff00ff) |
		                       (((K[i] << 24) | (K[i] >>> 8))  & 0xff00ff00);
		            }
	
		            // Generate initial state values
		            var X = this._X = [
		                K[0], (K[3] << 16) | (K[2] >>> 16),
		                K[1], (K[0] << 16) | (K[3] >>> 16),
		                K[2], (K[1] << 16) | (K[0] >>> 16),
		                K[3], (K[2] << 16) | (K[1] >>> 16)
		            ];
	
		            // Generate initial counter values
		            var C = this._C = [
		                (K[2] << 16) | (K[2] >>> 16), (K[0] & 0xffff0000) | (K[1] & 0x0000ffff),
		                (K[3] << 16) | (K[3] >>> 16), (K[1] & 0xffff0000) | (K[2] & 0x0000ffff),
		                (K[0] << 16) | (K[0] >>> 16), (K[2] & 0xffff0000) | (K[3] & 0x0000ffff),
		                (K[1] << 16) | (K[1] >>> 16), (K[3] & 0xffff0000) | (K[0] & 0x0000ffff)
		            ];
	
		            // Carry bit
		            this._b = 0;
	
		            // Iterate the system four times
		            for (var i = 0; i < 4; i++) {
		                nextState.call(this);
		            }
	
		            // Modify the counters
		            for (var i = 0; i < 8; i++) {
		                C[i] ^= X[(i + 4) & 7];
		            }
	
		            // IV setup
		            if (iv) {
		                // Shortcuts
		                var IV = iv.words;
		                var IV_0 = IV[0];
		                var IV_1 = IV[1];
	
		                // Generate four subvectors
		                var i0 = (((IV_0 << 8) | (IV_0 >>> 24)) & 0x00ff00ff) | (((IV_0 << 24) | (IV_0 >>> 8)) & 0xff00ff00);
		                var i2 = (((IV_1 << 8) | (IV_1 >>> 24)) & 0x00ff00ff) | (((IV_1 << 24) | (IV_1 >>> 8)) & 0xff00ff00);
		                var i1 = (i0 >>> 16) | (i2 & 0xffff0000);
		                var i3 = (i2 << 16)  | (i0 & 0x0000ffff);
	
		                // Modify counter values
		                C[0] ^= i0;
		                C[1] ^= i1;
		                C[2] ^= i2;
		                C[3] ^= i3;
		                C[4] ^= i0;
		                C[5] ^= i1;
		                C[6] ^= i2;
		                C[7] ^= i3;
	
		                // Iterate the system four times
		                for (var i = 0; i < 4; i++) {
		                    nextState.call(this);
		                }
		            }
		        },
	
		        _doProcessBlock: function (M, offset) {
		            // Shortcut
		            var X = this._X;
	
		            // Iterate the system
		            nextState.call(this);
	
		            // Generate four keystream words
		            S[0] = X[0] ^ (X[5] >>> 16) ^ (X[3] << 16);
		            S[1] = X[2] ^ (X[7] >>> 16) ^ (X[5] << 16);
		            S[2] = X[4] ^ (X[1] >>> 16) ^ (X[7] << 16);
		            S[3] = X[6] ^ (X[3] >>> 16) ^ (X[1] << 16);
	
		            for (var i = 0; i < 4; i++) {
		                // Swap endian
		                S[i] = (((S[i] << 8)  | (S[i] >>> 24)) & 0x00ff00ff) |
		                       (((S[i] << 24) | (S[i] >>> 8))  & 0xff00ff00);
	
		                // Encrypt
		                M[offset + i] ^= S[i];
		            }
		        },
	
		        blockSize: 128/32,
	
		        ivSize: 64/32
		    });
	
		    function nextState() {
		        // Shortcuts
		        var X = this._X;
		        var C = this._C;
	
		        // Save old counter values
		        for (var i = 0; i < 8; i++) {
		            C_[i] = C[i];
		        }
	
		        // Calculate new counter values
		        C[0] = (C[0] + 0x4d34d34d + this._b) | 0;
		        C[1] = (C[1] + 0xd34d34d3 + ((C[0] >>> 0) < (C_[0] >>> 0) ? 1 : 0)) | 0;
		        C[2] = (C[2] + 0x34d34d34 + ((C[1] >>> 0) < (C_[1] >>> 0) ? 1 : 0)) | 0;
		        C[3] = (C[3] + 0x4d34d34d + ((C[2] >>> 0) < (C_[2] >>> 0) ? 1 : 0)) | 0;
		  E      C[4] = (C[4] + 0xd34d34d3 + ((C[3] >>> 0) < (C_[3] >>> 0) ? 1 : 0)) | 0;
		        C[5] = (C[5] + 0x34d34d34 + ((C[4] >>> 0) < (C_[4] >>> 0) ? 1 : 0)) | 0;
		        C[6] = (C[6] + 0x4d34d34d + ((C[5] >>> 0) < (C_[5] >>> 0) ? 1 : 0)) | 0;
		        C[7] = (C[7] + 0xd34d34d3 + ((C[6] >>> 0) < (C_[6] >>> 0) ? 1 : 0)) | 0;
		        this._b = (C[7] >>> 0) < (C_[7] >>> 0) ? 1 : 0;
	
		        // Calculate the g-values
		        for (var i = 0; i < 8; i++) {
		            var gx = X[i] + C[i];
	
		            // Construct high and low argument for squaring
		            var ga = gx & 0xffff;
		            var gb = gx >>> 16;
	
		            // Calculate high and low result of squaring
		            var gh = ((((ga * ga) >>> 17) + ga * gb) >>> 15) + gb * gb;
		            var gl = (((gx & 0xffff0000) * gx) | 0) + (((gx & 0x0000ffff) * gx) | 0);
	
		            // High XOR low
		            G[i] = gh ^ gl;
		        }
	
		        // Calculate new state values
		        X[0] = (G[0] + ((G[7] << 16) | (G[7] >>> 16)) + ((G[6] << 16) | (G[6] >>> 16))) | 0;
		        X[1] = (G[1] + ((G[0] << 8)  | (G[0] >>> 24)) + G[7]) | 0;
		        X[2] = (G[2] + ((G[1] << 16) | (G[1] >>> 16)) + ((G[0] << 16) | (G[0] >>> 16))) | 0;
		        X[3] = (G[3] + ((G[2] << 8)  | (G[2] >>> 24)) + G[1]) | 0;
		        X[4] = (G[4] + ((G[3] << 16) | (G[3] >>> 16)) + ((G[2] << 16) | (G[2] >>> 16))) | 0;
		        X[5] = (G[5] + ((G[4] << 8)  | (G[4] >>> 24)) + G[3]) | 0;
		        X[6] = (G[6] + ((G[5] << 16) | (G[5] >>> 16)) + ((G[4] << 16) | (G[4] >>> 16))) | 0;
		        X[7] = (G[7] + ((G[6] << 8)  | (G[6] >>> 24)) + G[5]) | 0;
		    }
	
		    /**
		     * Shortcut functions to the cipher's object interface.
		     *
		     * @example
		     *
		     *     var ciphertext = CryptoJS.Rabbit.encrypt(message, key, cfg);
		     *     var plaintext  = CryptoJS.Rabbit.decrypt(ciphertext, key, cfg);
		     */
		    C.Rabbit = StreamCipher._createHelper(Rabbit);
		}());
	
	
		return CryptoJS.Rabbit;
	
	}));
 
/***/ },
/* 18 */
/***/ function(module, exports, __webpack_require__) {
 
	;(function (root, factory, undef) {
		if (true) {
			// CommonJS
			module.exports = exports = factory(__webpack_require__(5), __webpack_require__(12), __webpack_require__(13), __webpack_require__(14), __webpack_require__(15));
		}
		else if (typeof define === "function" && define.amd) {
			// AMD
			define(["./core", "./enc-base64", "./md5", "./evpkdf", "./cipher-core"], factory);
		}
		else {
			// Global (browser)
			factory(root.CryptoJS);
		}
	}(this, function (CryptoJS) {
	
		(function () {
		    // Shortcuts
		    var C = CryptoJS;
		    var C_lib = C.lib;
		    var StreamCipher = C_lib.StreamCipher;
		    var C_algo = C.algo;
	
		    /**
		     * RC4 stream cipher algorithm.
		     */
		    var RC4 = C_algo.RC4 = StreamCipher.extend({
		        _doReset: function () {
		            // Shortcuts
		            var key = this._key;
		            var keyWords = key.words;
		            var keySigBytes = key.sigBytes;
	
		            // Init sbox
		            var S = this._S = [];
		            for (var i = 0; i < 256; i++) {
		                S[i] = i;
		            }
	
		            // Key setup
		            for (var i = 0, j = 0; i < 256; i++) {
		                var keyByteIndex = i % keySigBytes;
		                var keyByte = (keyWords[keyByteIndex >>> 2] >>> (24 - (keyByteIndex % 4) * 8)) & 0xff;
	
		                j = (j + S[i] + keyByte) % 256;
	
		                // Swap
		                var t = S[i];
		                S[i] = S[j];
		                S[j] = t;
		            }
	
		            // Counters
		            this._i = this._j = 0;
		        },
	
		        _doProcessBlock: function (M, offset) {
		            M[offset] ^= generateKeystreamWord.call(this);
		        },
	
		        keySize: 256/32,
	
		        ivSize: 0
		    });
	
		    function generateKeystreamWord() {
		        // Shortcuts
		        var S = this._S;
		        var i = this._i;
		        var j = this._j;
	
		        // Generate keystream word
		        var keystreamWord = 0;
		        for (var n = 0; n < 4; n++) {
		            i = (i + 1) % 256;
		            j = (j + S[i]) % 256;
	
		            // Swap
		            var t = S[i];
		            S[i] = S[j];
		            S[j] = t;
	
		            keystreamWord |= S[(S[i] + S[j]) % 256] << (24 - n * 8);
		        }
	
		        // Update counters
		        this._i = i;
		        this._j = j;
	
		        return keystreamWord;
		    }
	
		    /**
		     * Shortcut functions to the cipher's object interface.
		     *
		     * @example
		     *
		     *     var ciphertext = CryptoJS.RC4.encrypt(message, key, cfg);
		     *     var plaintext  = CryptoJS.RC4.decrypt(ciphertext, key, cfg);
		     */
		    C.RC4 = StreamCipher._createHelper(RC4);
	
		    /**
		     * Modified RC4 stream cipher algorithm.
		     */
		    var RC4Drop = C_algo.RC4Drop = RC4.extend({
		        /**
		         * Configuration options.
		         *
		         * @property {number} drop The number of keystream words to drop. Default 192
		         */
		        cfg: RC4.cfg.extend({
		            drop: 192
		        }),
	
		        _doReset: function () {
		            RC4._doReset.call(this);
	
		            // Drop
		            for (var i = this.cfg.drop; i > 0; i--) {
		                generateKeystreamWord.call(this);
		            }
		        }
		    });
	
		    /**
		     * Shortcut functions to the cipher's object interface.
		     *
		     * @example
		     *
		     *     var ciphertext = CryptoJS.RC4Drop.encrypt(message, key, cfg);
		     *     var plaintext  = CryptoJS.RC4Drop.decrypt(ciphertext, key, cfg);
		     */
		    C.RC4Drop = StreamCipher._createHelper(RC4Drop);
		}());
	
	
		return CryptoJS.RC4;
	
	}));
 
/***/ }
/******/ ])
});
;
//# sourceMappingURL=secure-ls.js.map