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I'm trying to understand the following:

If I am declaring 64 bytes as the array length (buffer). When I convert to a base 64 string, it says the length is 88. Shouldn't the length only be 64, since I am passing in 64 bytes? I could be totally misunderstanding how this actual works. If so, could you please explain.

//Generate a cryptographic random number
RNGCryptoServiceProvider rng = new RNGCryptoServiceProvider();

// Create byte array
byte[] buffer = new byte[64];

// Get random bytes
rng.GetBytes(buffer);

// This line gives me 88 as a result. 
// Shouldn't it give me 64 as declared above?
throw new Exception(Convert.ToBase64String(buffer).Length.ToString());

// Return a Base64 string representation of the random number
return Convert.ToBase64String(buffer);
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Btw: throwing an exception is an awful way to log a simple value... –  Henk Holterman Feb 1 '12 at 20:40
    
I would not use RGN Encryption personally, A cryptographically strong RNG will be slower --- it takes more computation --- and will be spectrally white, –  DJ KRAZE Feb 1 '12 at 20:44
    
Look at this StackOverFlow Explanation of why it's not safe to use RGN stackoverflow.com/questions/4892588/… –  DJ KRAZE Feb 1 '12 at 20:46
1  
You seem to believe that the two "64"s in the code have something to do with each other. They don't. It's just a coincidence that you have 64 bytes and you are representing them in base 64. Think about the bits, not the bytes. A 64 byte number is a 512 bit number. How many characters do you need to represent a 512 bit number in base 64? –  Eric Lippert Feb 1 '12 at 20:52
    
@HenkHolterman How should I do it then? –  Frankie Feb 1 '12 at 20:53
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3 Answers

up vote 8 down vote accepted

No, base-64 encoding uses a whole byte to represent six bits of the data being encoded. The lost two bits is the price of using only alphanumeric, plus and slash as your symbols (basically, excluding the numbers representing not visible or special characters in plain ASCII/UTF-8 encoding). The result that you are getting is (64*4/3) rounded up to the nearest 4-byte boundary.

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Base64 encoding converts 3 octets into 4 encoded characters; therefore

(64/3)*4 ≈ (22*4) = 88 bytes.

Read here.

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Shouldn't the length only be 64, since I am passing in 64 bytes?

No. You are passing 64 tokens in Base256 notation. Base64 has less information per token, so it needs more tokens. 88 sounds about right.

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