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https://github.com/MCCTeam/Minecraft-Console-Client
synced 2025-10-14 21:22:49 +00:00
Mono Framework does not handle CFB-8 AES encryption mode. So now MCC will now use borrowed code from the BouncyCastle project for handling AES when running on Mono framework, instead of using a dirty workaround to try getting Mono encryption working. Regular .NET framework encryption module will still be used when not running under Mono (eg on Windows or using Wine) Should hopefully fix all the issues encountered on Mono including #41 and finally achieve full compatibility of MCC with Mac and Linux.
224 lines
7.6 KiB
C#
224 lines
7.6 KiB
C#
using System;
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using Org.BouncyCastle.Crypto.Parameters;
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namespace Org.BouncyCastle.Crypto.Modes
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{
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/**
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* implements a Cipher-FeedBack (CFB) mode on top of a simple cipher.
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*/
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public class CfbBlockCipher
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: IBlockCipher
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{
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private byte[] IV;
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private byte[] cfbV;
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private byte[] cfbOutV;
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private bool encrypting;
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private readonly int blockSize;
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private readonly IBlockCipher cipher;
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/**
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* Basic constructor.
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*
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* @param cipher the block cipher to be used as the basis of the
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* feedback mode.
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* @param blockSize the block size in bits (note: a multiple of 8)
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*/
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public CfbBlockCipher(
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IBlockCipher cipher,
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int bitBlockSize)
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{
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this.cipher = cipher;
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this.blockSize = bitBlockSize / 8;
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this.IV = new byte[cipher.GetBlockSize()];
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this.cfbV = new byte[cipher.GetBlockSize()];
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this.cfbOutV = new byte[cipher.GetBlockSize()];
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}
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/**
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* return the underlying block cipher that we are wrapping.
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*
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* @return the underlying block cipher that we are wrapping.
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*/
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public IBlockCipher GetUnderlyingCipher()
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{
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return cipher;
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}
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/**
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* Initialise the cipher and, possibly, the initialisation vector (IV).
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* If an IV isn't passed as part of the parameter, the IV will be all zeros.
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* An IV which is too short is handled in FIPS compliant fashion.
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*
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* @param forEncryption if true the cipher is initialised for
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* encryption, if false for decryption.
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* @param param the key and other data required by the cipher.
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* @exception ArgumentException if the parameters argument is
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* inappropriate.
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*/
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public void Init(
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bool forEncryption,
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ICipherParameters parameters)
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{
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this.encrypting = forEncryption;
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if (parameters is ParametersWithIV)
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{
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ParametersWithIV ivParam = (ParametersWithIV) parameters;
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byte[] iv = ivParam.GetIV();
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int diff = IV.Length - iv.Length;
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Array.Copy(iv, 0, IV, diff, iv.Length);
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Array.Clear(IV, 0, diff);
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parameters = ivParam.Parameters;
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}
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Reset();
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// if it's null, key is to be reused.
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if (parameters != null)
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{
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cipher.Init(true, parameters);
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}
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}
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/**
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* return the algorithm name and mode.
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*
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* @return the name of the underlying algorithm followed by "/CFB"
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* and the block size in bits.
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*/
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public string AlgorithmName
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{
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get { return cipher.AlgorithmName + "/CFB" + (blockSize * 8); }
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}
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public bool IsPartialBlockOkay
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{
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get { return true; }
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}
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/**
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* return the block size we are operating at.
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*
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* @return the block size we are operating at (in bytes).
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*/
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public int GetBlockSize()
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{
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return blockSize;
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}
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/**
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* Process one block of input from the array in and write it to
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* the out array.
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*
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* @param in the array containing the input data.
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* @param inOff offset into the in array the data starts at.
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* @param out the array the output data will be copied into.
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* @param outOff the offset into the out array the output will start at.
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* @exception DataLengthException if there isn't enough data in in, or
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* space in out.
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* @exception InvalidOperationException if the cipher isn't initialised.
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* @return the number of bytes processed and produced.
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*/
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public int ProcessBlock(
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byte[] input,
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int inOff,
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byte[] output,
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int outOff)
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{
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return (encrypting)
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? EncryptBlock(input, inOff, output, outOff)
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: DecryptBlock(input, inOff, output, outOff);
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}
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/**
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* Do the appropriate processing for CFB mode encryption.
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*
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* @param in the array containing the data to be encrypted.
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* @param inOff offset into the in array the data starts at.
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* @param out the array the encrypted data will be copied into.
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* @param outOff the offset into the out array the output will start at.
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* @exception DataLengthException if there isn't enough data in in, or
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* space in out.
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* @exception InvalidOperationException if the cipher isn't initialised.
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* @return the number of bytes processed and produced.
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*/
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public int EncryptBlock(
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byte[] input,
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int inOff,
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byte[] outBytes,
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int outOff)
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{
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if ((inOff + blockSize) > input.Length)
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{
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throw new DataLengthException("input buffer too short");
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}
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if ((outOff + blockSize) > outBytes.Length)
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{
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throw new DataLengthException("output buffer too short");
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}
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cipher.ProcessBlock(cfbV, 0, cfbOutV, 0);
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//
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// XOR the cfbV with the plaintext producing the ciphertext
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//
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for (int i = 0; i < blockSize; i++)
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{
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outBytes[outOff + i] = (byte)(cfbOutV[i] ^ input[inOff + i]);
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}
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//
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// change over the input block.
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//
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Array.Copy(cfbV, blockSize, cfbV, 0, cfbV.Length - blockSize);
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Array.Copy(outBytes, outOff, cfbV, cfbV.Length - blockSize, blockSize);
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return blockSize;
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}
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/**
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* Do the appropriate processing for CFB mode decryption.
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*
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* @param in the array containing the data to be decrypted.
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* @param inOff offset into the in array the data starts at.
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* @param out the array the encrypted data will be copied into.
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* @param outOff the offset into the out array the output will start at.
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* @exception DataLengthException if there isn't enough data in in, or
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* space in out.
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* @exception InvalidOperationException if the cipher isn't initialised.
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* @return the number of bytes processed and produced.
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*/
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public int DecryptBlock(
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byte[] input,
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int inOff,
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byte[] outBytes,
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int outOff)
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{
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if ((inOff + blockSize) > input.Length)
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{
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throw new DataLengthException("input buffer too short");
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}
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if ((outOff + blockSize) > outBytes.Length)
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{
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throw new DataLengthException("output buffer too short");
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}
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cipher.ProcessBlock(cfbV, 0, cfbOutV, 0);
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//
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// change over the input block.
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//
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Array.Copy(cfbV, blockSize, cfbV, 0, cfbV.Length - blockSize);
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Array.Copy(input, inOff, cfbV, cfbV.Length - blockSize, blockSize);
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//
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// XOR the cfbV with the ciphertext producing the plaintext
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//
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for (int i = 0; i < blockSize; i++)
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{
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outBytes[outOff + i] = (byte)(cfbOutV[i] ^ input[inOff + i]);
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}
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return blockSize;
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}
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/**
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* reset the chaining vector back to the IV and reset the underlying
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* cipher.
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*/
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public void Reset()
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{
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Array.Copy(IV, 0, cfbV, 0, IV.Length);
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cipher.Reset();
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}
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}
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}
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