2

I have Hex number available in string and I want to shorten it by removing leading zeros. I need to do it in Java

For example :

0000000000000000000000000A000000   -> 0x0A000000
0x0000000000000000000000000A000000 -> 0x0A000000

000000000000000000000000C0A80000   -> 0xC0A80000
0x000000000000000000000000C0A80000 -> 0xC0A80000

Currently below code throws NumberFormatException exception

System.out.println(Long.toHexString(Long.parseLong("0x0000000000000000000000000A000000")));
  • 1
    Looks like his does. – JJF Jun 6 at 13:01
  • 3
    @Lino prefixing hex numbers with 0x is common in many programming languages (including Java) – Gyro Gearless Jun 6 at 13:03
  • @GyroGearless literals are prefixed (int i = 0xABC;), but not strings AFAIK (Long.toHexString(0x11) -> 11) – Lino Jun 6 at 13:33
2

You are not using Long.parseLong correctly.

It should be:

System.out.println(Long.toHexString(Long.parseLong("0000000000000000000000000A000000",16)));

but that will result with

a000000

which is not exactly what you wanted.

You'll have to add some additional formatting to get the exact output you wanted:

String shortHex = Long.toHexString(Long.parseLong("0000000000000000000000000A000000",16)).toUpperCase ();
String formatted = (shortHex.length () % 2 == 0 ? "0x":"0x0") + shortHex;
System.out.println (formatted);

Now the output will be:

0x0A000000

If your input starts with "0x", you'll have to trim that prefix before calling parseLong.

  • 3
    Depending on the value of the hex string, it might be preferable to use new BigInteger(hex, 16).toString(16) instead of Long. – second Jun 6 at 13:09
3

As others have mentioned, hex strings don't start with 0x, this is merely a prefix for hexadecimal literals.

One possibility to achieve what you want, would be the following:

void foo(String myString) {
    /*
        Here we're making myString upper case and checking if it begins w/ 0x.
        If the string starts with 0X, that'll be replaced with an empty string.
    */
    if ((myString = myString.ToUpperCase()).startsWith("0X")) {
        myString = myString.replace("0X", "");
    }

    String parsedHex = Long.toHexString(Long.parseLong(myString, 16 /* This is the radix (base) of the number. In this case we want hex (16) */));
    System.out.println(String.format("0x%s%s", parsedHex.length() % 2 == 0 ? "" : "0" /* If it's an odd number, add a leading zero. */, parsedHex));

}
1

Basic idea:

  1. Check overflow
  2. only pick last 8 characters from the original long string, e.g. 0A000000 from 0000000000000000000000000A000000.
  3. add "0x" prefix.
1

As stated in the comment on the OP, hex strings (as seen by Long.parseLong())don't start with 0x. That's why you are getting a NumberFormatException.

There are multiple ways of getting around this.

  1. Remove the 0x if neccesary, parse, then add it back

    static String shortenHex(String input){
        if(input.charAt(1)=='x') inputnput = input.substring(2);
        return "0x"+Long.toHexString(Long.parseLong(shortenedInput, 16)).toUpperCase();
    }
    
  2. Add the 0x if applicable, then use a regex

    static String  shortenHex(String input){
        if(input.charAt(1)!= 'x') input = "0x"+input;
        return input.replaceAll("(?<=0x)0+","");
    }
    
0

If you just want the string form and not the literal form, then this should work.

      String[] hex = {
            "0000000000000000000000000A000000",
            "0x0000000000000000000000000A000000",
            "000000000000000000000000C0A80000",
            "0x000000000000000000000000C0A80000"
      };

      for (String h : hex) {
         String hmod = h.replaceAll("[0x]*([123456789ABCDEF].*)", "0x$1");
         System.out.println(h + " -> " + hmod);
      }

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