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I want to convert a hex string to long in java.

I have tried with general conversion.

String s = "4d0d08ada45f9dde1e99cad9";
long l = Long.valueOf(s).longValue();
System.out.println(l);
String ls = Long.toString(l);

But I am getting this error message:

java.lang.NumberFormatException: For input string: "4d0d08ada45f9dde1e99cad9"

Is there any way to convert String to long in java? Or am i trying which is not really possible!!

Thanks!

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2  
Try to add a "0x" prefix to the string before calling valueOf – sinelaw Mar 1 '11 at 11:27
3  
Umm ... did you look in the javadocs? Save yourself time and always look in the javadocs first. – Stephen C Mar 1 '11 at 11:27
1  
Also, valueOf should accept a second parameter that specifies the base. Try passing 16 (and the string without the prefix) – sinelaw Mar 1 '11 at 11:28
    
2  
@sinelaw - I think you are confusing Long.valueOf(String) with Long.decode(String). The Javadoc for valueOf(String) says "Parses the string argument as a signed decimal long." – Stephen C Mar 1 '11 at 11:32
up vote 49 down vote accepted

Long.decode(str) accepts a variety of formats:

Accepts decimal, hexadecimal, and octal numbers given by the following grammar:
DecodableString:

  • Signopt DecimalNumeral
  • Signopt 0x HexDigits
  • Signopt 0X HexDigits
  • Signopt # HexDigits
  • Signopt 0 OctalDigits

Sign:

  • -

But in your case that won't help, your String is beyond the scope of what long can hold. You need a BigInteger:

String s = "4d0d08ada45f9dde1e99cad9";
BigInteger bi = new BigInteger(s, 16);
System.out.println(bi);

Output:

23846102773961507302322850521

For Comparison, here's Long.MAX_VALUE:

9223372036854775807

share|improve this answer
    
Not sure about System.out.println method signature, but using bi in a String assignment I needed to use bi.toString() – J E Carter II Apr 1 '15 at 16:51
    
@JECarterII println on an Object calls that object's toString() method – Sean Patrick Floyd Oct 15 '15 at 20:30
    
Cheers @Sean Patrick Floyd - missed that. – J E Carter II Oct 16 '15 at 12:25

Use parseLong:

Long.parseLong(s, 16)
share|improve this answer
4  
True in general, but fails in this case (the number is much too large for a Long) – Sean Patrick Floyd Mar 1 '11 at 11:43
    
still it throws NumberFormatException,it's too long. – Dead Programmer Mar 1 '11 at 11:55
    
@Suresh: Yes, your sample string cannot be converted to a long, I was just answering "How to convert a hexadecimal string to long". You may want to look at BigInteger as Sean Patrick Floyd mentioned. – Erik Mar 1 '11 at 12:04
1  
The goal is to convert to a Long, right? Then this is the clean and easy way to do it! – LCoelho Nov 28 '14 at 13:34
    
@SeanPatrickFloyd That's the OP's problem, not this answer's. – EJP Jul 18 at 3:50
new BigInteger(string, 16).longValue()

For any value of someLong:

new BigInteger(Long.toHexString(someLong), 16).longValue() == someLong

In other words, this will return the long you sent into Long.toHexString() for any long value, including negative numbers. It will also accept strings that are bigger than a long and silently return the lower 64 bits of the string as a long. You can just check the string length <= 16 (after trimming whitespace) if you need to be sure the input fits in a long.

share|improve this answer

Long.parseLong(s, 16) will only work up to "7fffffffffffffff". Use BigInteger instead:

public static boolean isHex(String hex) {
    try {
        new BigInteger(hex, 16);
        return true;
    } catch (NumberFormatException e) {
        return false;
    }
}
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