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Is there a simpler way of implement this? Or a implemented method in JDK or other lib?

 * Convert a byte array to 2-byte-size hexadecimal String.
public static String to2DigitsHex(byte[] bytes) {
String hexData = "";
for (int i = 0; i < bytes.length; i++) {
    int intV = bytes[i] & 0xFF; // positive int
    String hexV = Integer.toHexString(intV);
    if (hexV.length() < 2) {
    hexV = "0" + hexV;
    hexData += hexV;
return hexData;

public static void main(String[] args) {
System.out.println(to2DigitsHex(new byte[] {8, 10, 12}));

the output is: "08 0A 0C" (without the spaces)

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Isn't it supposed to be 08 0A 0C? – T . Apr 15 '10 at 14:07
@Toon: Without the 3 at the end (typo?), yeah. – T.J. Crowder Apr 15 '10 at 14:09
Clearly, I should've spent more time answering the question and less time making obvious comments (with typos, no less). Or I can just claim BalusC is just too fast for a mere human. Yeah. – T . Apr 15 '10 at 14:11

6 Answers 6

up vote 6 down vote accepted

Apache Commons-Codec has the Hex class, which will do what you need:

String hexString = Hex.encodeHexString(bytes);

By far the easiest method. Don't mess with binary operators, use the libraries to do the dirty work =)

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Use at least StringBuilder#append() instead of stringA += stringB to improve performance and save memory.

public static String binaryToHexString(byte[] bytes) {
    StringBuilder hex = new StringBuilder(bytes.length * 2);
    for (byte b : bytes) {
        int i = (b & 0xFF);
        if (i < 0x10) hex.append('0');
    return hex.toString();
share|improve this answer
With all due respect, one still MUST cast byte variable b to int, otherwise b < 0x10 will be triggered for the negative byte values and the result will be corrupted. int n = b & 0xFF; if (n < 0x10) would solve that problem. – informatik01 Dec 28 '12 at 18:41
@informatik01: right, fixed. – BalusC Dec 28 '12 at 18:55
public static String to2DigitsHex(final byte[] bytes) {
    final StringBuilder accum = new StringBuilder(bytes.length * 2);
    for (byte b : bytes) {
      b &= 0xff;
      if (b < 16) accum.append("0");
    return accum.toString();

You're better off using an explicit StringBuilder of your own if this routine is going to be called a lot.

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You could use BigInteger for this.


(new BigInteger(1,bytes)).toString(16)

You will need to add an '0' at the beginning.

A more elegant solution (taken from here) is:

BigInteger i = new BigInteger(1,bytes);
System.out.println(String.format("%1$06X", i));

You need to know the number of bytes in advance in order to use the correct formatter.

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That's indeed a nice oneliner (+1), but I've profiled it before, it's relatively slow and, above all, it doesn't prefix bytes < 0x10 with zeroes. – BalusC Apr 15 '10 at 14:14
Only the first zero will not be prefixed. For example {8, 10, 12} will be converted to 80a0c. I have successfully used this for generation of MD5 hashes. I can't say anything about the performance. – kgiannakakis Apr 15 '10 at 14:21
 private static String to2DigitsHex(byte[] bs) {
      String s = new BigInteger(bs).toString(16);
      return s.length()%2==0? s : "0"+s;
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I'm not taking any credit for this implementation as I saw it as part of a similar discussion and thought it was an elegant solution:

private static final String HEXES = "0123456789ABCDEF";

public String toHexString(byte[] bytes) {
    final StringBuilder hex = new StringBuilder(2 * bytes.length);
    for (final byte b : _bytes) {
        hex.append(HEXES.charAt((b & 0xF0) >> 4))
           .append(HEXES.charAt((b & 0x0F)));
    return hex.toString();
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