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I am using following code block to generate MD5 hashes:

public static String encode(String data) throws Exception {

    /* Check the validity of data */
    if (data == null || data.isEmpty()) {
        throw new IllegalArgumentException("Null value provided for "
                + "MD5 Encoding");
    }

    /* Get the instances for a given digest scheme MD5 or SHA */
    MessageDigest m = MessageDigest.getInstance("MD5");

    /* Generate the digest. Pass in the text as bytes, length to the
     * bytes(offset) to be hashed; for full string pass 0 to text.length()
     */
    m.update(data.getBytes(), 0, data.length());

    /* Get the String representation of hash bytes, create a big integer
     * out of bytes then convert it into hex value (16 as input to
     * toString method)
     */
    String digest = new BigInteger(1, m.digest()).toString(16);

    return digest;
}

When I run the above code segment with String data as [12, B006GQIIEM, MH-ANT2000], the output is a 31 character hash - 268d43a823933c9dafaa4ac0e756d6a.

Is there any problem with the MD5 hash function or there is some problem in the code above?

share|improve this question
    
I just found here that there is a 0 in the beginning which got skipped out. I tried online MD5 generator here and it too gives the same as 0268d43a823933c9dafaa4ac0e756d6a. Do I need to prefix a 0 everytime when the length of the hash is not 32? –  divinedragon Nov 16 '12 at 7:16
    
Is your input [12, B006GQIIEM, MH-ANT2000] ? –  Bhavik Ambani Nov 16 '12 at 7:29
    
But when I tried to enter input as above it game me output a722cc2bf6bf1fcf579e70d4b2ce721f 32 bytes. –  Bhavik Ambani Nov 16 '12 at 7:35
    
Yes. Braces are part of the input. –  divinedragon Nov 16 '12 at 7:43
    
Then why I am getting 32 bit encoded text using your code as I stated above –  Bhavik Ambani Nov 16 '12 at 7:44

4 Answers 4

up vote 5 down vote accepted

The only issue in your code is when MSB is less than Ox10, the result hash string will only have 31 bytes, instead of 32 bytes, missing the leading zero.

Create your md5 string in this way:

            byte messageDigest[] = m.digest();

            hexString = new StringBuffer();
            for (int i=0;i<messageDigest.length;i++) {
                String hex=Integer.toHexString(0xFF & messageDigest[i]);
                if(hex.length()==1)
                    hexString.append('0');

                hexString.append(hex);
            }
share|improve this answer
    
So it is just that additional 0. If the hash length is 31, I need to prefix it with a 0. That's it right? –  divinedragon Nov 16 '12 at 7:47
    
@divinedragon no you doesn't have to add additional '0'. You have to check each character length and append '0' at that particular place. '0' can be added in the middle of the string. You can see in the code that I am checking every string length and appending '0'. –  rizzz86 Nov 16 '12 at 7:58
    
@rizzz86: Sorry, but your comment is misleading because it does not relate to the OP's code but to yours. He used .toString(16) and that generates a correct hex representation, it will not forget to add zeros within the hex string - it only discards leading zeros. So the OP might as well have prefixed with as many zeros as are necessary to get a 32-byte string. –  zb226 Jun 19 '13 at 15:45

This is how I use MD5 hash. Calculate MD5 hash from string and return 32-byte hexadecimal representation.

import java.io.UnsupportedEncodingException; 
import java.security.MessageDigest; 
import java.security.NoSuchAlgorithmException; 

public class MySimpleMD5 { 

private static String convertToHex(byte[] data) { 
    StringBuffer buf = new StringBuffer();
    for (int i = 0; i < data.length; i++) { 
        int halfbyte = (data[i] >>> 4) & 0x0F;
        int two_halfs = 0;
        do { 
            if ((0 <= halfbyte) && (halfbyte <= 9)) 
                buf.append((char) ('0' + halfbyte));
            else 
                buf.append((char) ('a' + (halfbyte - 10)));
            halfbyte = data[i] & 0x0F;
        } while(two_halfs++ < 1);
    } 
    return buf.toString();
} 

public static String MD5(String text) 
throws NoSuchAlgorithmException, UnsupportedEncodingException  { 
    MessageDigest md;
    md = MessageDigest.getInstance("MD5");
    byte[] md5hash = new byte[32];
    md.update(text.getBytes("iso-8859-1"), 0, text.length());
    md5hash = md.digest();
    return convertToHex(md5hash);
 } 
} 
share|improve this answer
    
Your version works correctly. Any idea what was the problem in earlier code piece? –  divinedragon Nov 16 '12 at 7:22
    
Very good answer, but I think this does not satisfy the requirements of the questioner. –  Bhavik Ambani Nov 16 '12 at 7:29

You can try this:

...
String digest = String.format("%032x", new BigInteger(1, m.digest()));

Note: it is "%032x", not "%32x".

share|improve this answer
    
Your version returns a different hash altogether - d41d8cd98f00b204e9800998ecf8427e. –  divinedragon Nov 16 '12 at 7:45
    
Thanks. But I've been using it from the day I touched Java. –  user1521536 Nov 16 '12 at 20:46
    
@divinedragon works for me. I copied your code, then replaced with this line. –  djeikyb May 1 '13 at 23:52

You can also try this:

private static String getMd5Hash(String input) throws NoSuchAlgorithmException {
    MessageDigest m = MessageDigest.getInstance("MD5");

    byte[] data = m.digest(EncodingUtils.getBytes(input, "UTF8"));

    StringBuilder sBuilder = new StringBuilder();

    for (int i = 0; i < data.length; i++) {

        for (byte b : data) {
            if(b == 0x00){
                sBuilder.append("00");
            } else if ((b & 0x0F) == b) {
                sBuilder.append("0");
                break;
            } else {
                break;
            }
        }

        BigInteger bigInt = new BigInteger(1, data);
        sBuilder.append(bigInt.toString(16));
    }

    // Return the hexadecimal string.
    return sBuilder.toString().substring(0, 32);
}
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