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I have a bunch of hex strings, one of them, for example is:


which is the hex value of "-3333702275990511909". This is the same hex you get if you do Long.toHexString("d1bc4f7154ac9edb");

For now, let's just assume I only have access to the hex string values and that is it. Doing this:

  Long.parseLong(hexstring, 16);

Doesn't work because it converts it to a different value that is too large for a Long. Is there away to convert these unsigned hex values into signed longs?


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3 Answers 3

up vote 14 down vote accepted

You can use BigInteger to parse it and get back a long:

long value = new BigInteger("d1bc4f7154ac9edb", 16).longValue();
System.out.println(value); // this outputs -3333702275990511909
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You may split it in half and read 32 bits at a time. Then use shift-left by 32 and a logical or to get it back into a single long.

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do you have a code sample of what you mean? – Peter Apr 19 '11 at 22:45
Something roughly like: (Long.parseLong(hexstring.substring(0, 8), 16) << 32) | (Long.parseLong(hexstring.substring(8, 16), 16) << 0) – Knut Forkalsrud Jun 10 '11 at 2:01

The method below has the benefit of not creating another BigInteger object every time you need to do this.

public class Test {
   * Returns a {@code long} containing the least-significant 64 bits of the unsigned hexadecimal input.
   * @param  valueInUnsignedHex     a {@link String} containing the value in unsigned hexadecimal notation
   * @return                        a {@code long} containing the least-significant 64 bits of the value
   * @throws NumberFormatException  if the input {@link String} is empty or contains any nonhexadecimal characters
  public static final long fromUnsignedHex(final String valueInUnsignedHex) {
    long value = 0;

    final int hexLength = valueInUnsignedHex.length();
    if (hexLength == 0) throw new NumberFormatException("For input string: \"\"");
    for (int i = Math.max(0, hexLength - 16); i < hexLength; i++) {
      final char ch = valueInUnsignedHex.charAt(i);

      if      (ch >= '0' && ch <= '9') value = (value << 4) | (ch - '0'         );
      else if (ch >= 'A' && ch <= 'F') value = (value << 4) | (ch - ('A' - 0xaL));
      else if (ch >= 'a' && ch <= 'f') value = (value << 4) | (ch - ('a' - 0xaL));
      else                             throw new NumberFormatException("For input string: \"" + valueInUnsignedHex + "\"");

    return value;

  public static void main(String[] args) {

This produces

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This looks good, but instead of obtaining the digit values as you did above, maybe it would be best to use Character.digit?… – asieira Jul 23 '14 at 15:00
Character.digit includes all Unicode decimal digits, and I don't want to handle all of them since there are several sets of them, some of which aren't properly documented. – Olathe Jul 27 '14 at 21:15
I believe that being able to extract the numeric value of any of the possible Unicode digits is a plus by making your code more portable and internatinoalization-friendly. Even if your project does not need it, maybe stack overflow users would benefit if you updated your answer. Just my 2 cents. – asieira Jul 28 '14 at 22:45

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