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I'm trying to encrypt a simple string using AES algorithm. Everything seems fine and i'm able to decrypt it. Just for curiosity i printed the encrypted data to the console and i was surprised to see it.

Input String : raw text string.

Encrypted data : Díå¼[¶cE¶Ÿ¸’E‚;èýaó1ÒŽ&ýÈZ

Decrypted Data : raw text string.

Can anyone explain me why the encrypted data bits are twice long as that of input string..?

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2 Answers 2

up vote 1 down vote accepted

Encryption works on blocks of data of a fixed size. Appropriate padding is added during encoding and removed during decoding.

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thanks for your reply, john. So it means that the remaining (128 - 16) bits are getting padded in this case ? (Since AES works on 128 bit block size) –  Puru Pawar Aug 31 '12 at 12:03
    
Most (all?) encryption algorithms use a block size == key size. So AES with a 128 bit key uses 128 bit blocks. –  John Watts Aug 31 '12 at 12:07
    
yes but what i want to know is that the remaining bits get padded or not.if yes then by what ? Can i explicitly pad the remaining bits ? –  Puru Pawar Aug 31 '12 at 12:11
    
They do. And you don't want to control that padding. It is done following a specific algorithm for security reasons. As a degenerate case, imagine you encrypted a single byte and padded with zeros. An attacker who knew this and read your encrypted ciphertext could use it as an "oracle". The attacker takes a guess at your key and confirms it by encrypting all 256 possible plaintext values, then comparing the encrypted ciphertext with yours. –  John Watts Aug 31 '12 at 12:21
1  
You are confusing bits and bytes. You are encrypting a 16 character string that probably becomes 16 bytes plus a null terminator when encoded as bytes. So 17 bytes * 8 bits per byte = 136 bits to encrypt. That means two 128-bit blocks. –  John Watts Aug 31 '12 at 13:55

I would not rely on displaying a special character String to tell its length. On encryption, you typically get a byte[] for which length should give you the exact value. If you want it printed, a hex representation looks clearer:

public static void showHex(byte[] data) {
    final String HEXDIGITS = "0123456789abcdef";
    StringBuilder res = new StringBuilder();

    for (int i = 0; i < data.length; i++) {
        int v = data[i] & 0xff;
        res.append(HEXDIGITS.charAt(v >> 4));
        res.append(HEXDIGITS.charAt(v & 0xf));
    }

    System.out.println(res);
}
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Thanks for the reply, f_puras . I tried your code and came up with a different result. When i encrypt a 16 length string using aes , i get 32 bit length encrypted data and if i encrypt a 15 length string i get 16 bit encrypted data .. can you explain me why is this happening ? –  Puru Pawar Aug 31 '12 at 12:21
    
As @johnwatts already mentioned, you have to take padding into account. –  f_puras Aug 31 '12 at 12:34
    
Puru, padding always happens, so a 16 byte plain text will get a full block of padding. This allows the unpadding mechanism to work regardless of the value of the end of the plaintext; the unpadding mechanism can distinguish between padding and plain text this way. –  owlstead Aug 31 '12 at 16:36

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