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I'm sorry about the confusing title, I honestly had no clue what to call it! I was tossing up whether this belong on one of the security/crypto exchange sites but as this is predominantly a programming question I will post it here. Feel free to move it!

I have an AES crypto stream, and as AES pads the original data with blocks, the resulting encrypted data is almost always a different size to the original unencrypted data. When decrypting, you need to know how many bytes to read from the crypto stream (how many unencrypted bytes there are). I was originally planning on sending the original, unencrypted data length in the packet but then I thought of another way. If I just read 4096 bytes from the Crypto Stream and store how many actual bytes were read, I can then copy the correct amount of bytes to a new array and use that.

Is it safe to do that? My code is the following:

using (ICryptoTransform crypt = AES.CreateDecryptor())
{
    using (MemoryStream memStrm = new MemoryStream(data))
    {
        using (CryptoStream cryptStrm = new CryptoStream(memStrm, crypt, CryptoStreamMode.Read))
        {
            byte[] bytes = new byte[size];
            int read = cryptStrm.Read(bytes, 0, 4096);
            byte[] temp = new byte[read];
            Array.Copy(bytes, temp, read);
            return temp;
        }
    }
}

By safe I mean, will it always produce correct decrypted data?

share|improve this question
    
Rereading your post, it's not clear to me whether you've found that the CryptoStream will return extra data (and you're asking whether just a single Read will prevent that) or whether you're checking whether CryptoStream already removes padding. Either way, using a single call to Read is a bad idea - there's no guarantee that it'll return all the data in one go. –  Jon Skeet Feb 14 '13 at 7:15
1  
Your code will fail if the data is larger than 4096 bytes or larger than size. –  CodesInChaos Feb 14 '13 at 8:09
1  
Since you're talking about packets, this sounds a bit like you're encrypting a network connection. In that case, use SSL, not such a homebrew scheme. –  CodesInChaos Feb 14 '13 at 8:41
1  
@jduncanator Only if you give wireshark additional information, such as the server's private key. SSL has its flaws, but if you use it correctly, they'll be much smaller than the flaws in your protocol. –  CodesInChaos Feb 14 '13 at 8:53
1  
SSL is not vulnerable to MitM if the client verifies the server key. But since you don't want security, just obfuscation a custom scheme might be preferable. I'd still run it inside SSL. –  CodesInChaos Feb 14 '13 at 9:07
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1 Answer 1

up vote 2 down vote accepted

Why are you jumping through so many hoops? MemoryStream, CryptoStream, temporary arrays...

return crypt.TransformFinalBlock(data, 0, data.Length);

To make your crypto secure, you should also use a random IV for each encryption, stored alongside the ciphertext. And adding a MAC (such as HMAC-SHA-256) in an encrypt-then-mac construction prevents a number of active attacks, including padding oracles.

share|improve this answer
1  
Everywhere I go I see people using MemoryStreams etc. Even the Microsoft documentation does it this way! You suggest adding a MAC, do you have anywhere you could point me to find a guide or some information on it? –  jduncanator Feb 14 '13 at 8:28
    
However, this method seems to work flawlessly!! THANKS! I wonder why Microsoft and others decide to implement streams and the lot! Regarding the IV, is the IV basically a Salt? Wouldn't sending the IV in plain text remove the purpose for it? –  jduncanator Feb 14 '13 at 8:38
1  
HMACSHA256 class and for how encrypt-then-mac works: security.stackexchange.com/questions/26289/… –  CodesInChaos Feb 14 '13 at 8:38
    
IV is something similar to a salt. It's not secret, but must be different for each encryption, and in the case of CBC mode it should be unpredictable. –  CodesInChaos Feb 14 '13 at 8:39
    
Brute-forcing AES keys is hopeless with current technology, because there are too many (and with AES-256 it's hopeless even with future technology). The idea of an IV is that if you encrypt the same message twice, you'll get completely independent ciphertext. In some cases it also prevents multi-target attacks. –  CodesInChaos Feb 14 '13 at 8:51
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