Added 'Pseudo-Random Number Generator' operation.
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f52f5a0edb
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a3f58fb831
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@ -99,6 +99,7 @@ const Categories = [
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"Substitute",
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"Derive PBKDF2 key",
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"Derive EVP key",
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"Pseudo-Random Number Generator",
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]
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},
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{
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@ -198,6 +199,7 @@ const Categories = [
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"Parse colour code",
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"Escape string",
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"Unescape string",
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"Pseudo-Random Number Generator",
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]
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},
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{
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@ -313,6 +315,7 @@ const Categories = [
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"Detect File Type",
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"Scan for Embedded Files",
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"Disassemble x86",
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"Pseudo-Random Number Generator",
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"Generate UUID",
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"Generate TOTP",
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"Generate HOTP",
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@ -1503,6 +1503,24 @@ const OperationConfig = {
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},
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]
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},
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"Pseudo-Random Number Generator": {
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module: "Ciphers",
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description: "A cryptographically-secure pseudo-random number generator (PRNG).<br><br>This operation uses the browser's built-in <code>crypto.getRandomValues()</code> method if available. If this cannot be found, it falls back to a Fortuna-based PRNG algorithm.",
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inputType: "string",
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outputType: "string",
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args: [
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{
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name: "Number of bytes",
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type: "number",
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value: Cipher.PRNG_BYTES
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},
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{
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name: "Output as",
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type: "option",
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value: Cipher.PRNG_OUTPUT
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}
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]
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},
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"Derive PBKDF2 key": {
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module: "Ciphers",
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description: "PBKDF2 is a password-based key derivation function. It is part of RSA Laboratories' Public-Key Cryptography Standards (PKCS) series, specifically PKCS #5 v2.0, also published as Internet Engineering Task Force's RFC 2898.<br><br>In many applications of cryptography, user security is ultimately dependent on a password, and because a password usually can't be used directly as a cryptographic key, some processing is required.<br><br>A salt provides a large set of keys for any given password, and an iteration count increases the cost of producing keys from a password, thereby also increasing the difficulty of attack.<br><br>If you leave the salt argument empty, a random salt will be generated.",
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@ -38,6 +38,7 @@ OpModules.Ciphers = {
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"Affine Cipher Decode": Cipher.runAffineDec,
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"Atbash Cipher": Cipher.runAtbash,
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"Substitute": Cipher.runSubstitute,
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"Pseudo-Random Number Generator": Cipher.runPRNG,
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};
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export default OpModules;
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@ -437,7 +437,7 @@ DES uses a key length of 8 bytes (64 bits).`;
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forge.random.getBytesSync(keySize),
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derivedKey = forge.pkcs5.pbkdf2(passphrase, salt, iterations, keySize / 8, hasher.toLowerCase());
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return Utils.toHexFast(Utils.strToCharcode(derivedKey));
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return forge.util.bytesToHex(derivedKey);
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},
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@ -515,6 +515,53 @@ DES uses a key length of 8 bytes (64 bits).`;
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},
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/**
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* @constant
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* @default
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*/
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PRNG_BYTES: 32,
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PRNG_OUTPUT: ["Hex", "Number", "Byte array", "Raw"],
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/**
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* Pseudo-Random Number Generator operation.
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*
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* @param {string} input
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* @param {Object[]} args
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* @returns {string}
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*/
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runPRNG: function(input, args) {
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const numBytes = args[0],
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outputAs = args[1];
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let bytes;
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if (ENVIRONMENT_IS_WORKER() && self.crypto) {
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bytes = self.crypto.getRandomValues(new Uint8Array(numBytes));
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bytes = Utils.arrayBufferToStr(bytes.buffer);
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} else {
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bytes = forge.random.getBytesSync(numBytes);
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}
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let value = 0,
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i;
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switch (outputAs) {
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case "Hex":
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return forge.util.bytesToHex(bytes);
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case "Number":
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for (i = bytes.length - 1; i >= 0; i--) {
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value = (value * 256) + bytes.charCodeAt(i);
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}
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return value.toString();
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case "Byte array":
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return JSON.stringify(Utils.strToCharcode(bytes));
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case "Raw":
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default:
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return bytes;
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}
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},
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/**
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* Vigenère Encode operation.
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*
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