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i have code that looks like this

             public static void main(String[] args) {
    String string= "11011100010000010001000000000000";
   String string1= "00000000010000110000100000101100";

    System.out.println(Integer.toHexString(Integer.parseInt(string1,2)));

    System.out.println(Integer.toHexString(Integer.parseInt(string,2)));


}

the first string convert just fine but the second one has an error of java.lang.NumberFormatException dont know what the problem is

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Welcome to SO! You should "check" the answer that you accept. This will not only mark the question as closed but will also give a bonus reputation to the person who helped you solve your problem. –  Yanick Rochon Dec 3 '12 at 6:58

5 Answers 5

up vote 1 down vote accepted

When the most significant bit of a 32-character binary number is set to 1, the resultant value exceeds the range of positive numbers supported by int, and can no longer be interpreted as a valid integer number. This causes the exception according to the documentation:

An exception of type NumberFormatException is thrown if any of the following situations occurs:

  • The first argument is null or is a string of length zero.
  • The radix is either smaller than Character.MIN_RADIX or larger than Character.MAX_RADIX.
  • Any character of the string is not a digit of the specified radix, except that the first character may be a minus sign '-' ('\u002D') provided that the string is longer than length 1.
  • The value represented by the string is not a value of type int. (emphasis is mine)

In order to enter this negative binary value, use - sign in front of your number, and convert the remaining bits to 2-s complement representation.

If you need numbers that are longer than 32 bits, or if you would like the value to continue being interpreted as a positive number, you would need to switch to the 64-bit integer data type.

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+1, but parseInt and its opposite have nothing to do with "real binary", they work on base-2 number system. There is no significant bit, nor is the fact that the string is 32 characters long treated any differently than any other amount. So adding a - in front of this number, will just be equivalent of -3695251456 in base-10 and will cause the same exception. –  Esailija Dec 3 '12 at 10:10

try this:

Long.toHexString(Long.parseLong(string,2))

(edited from parsLong to parseLong)

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wow ur fast thx a lot! –  Dominic J. Lucenario Dec 3 '12 at 4:51
    
The explanation makes no sense though. Starting with 0 has nothing to do with it. –  Esailija Dec 3 '12 at 10:03
    
im trying to convert it to a hex value with a specified length needed –  Dominic J. Lucenario Dec 3 '12 at 13:26
    
Crashes for me with long bit values (96 bit to hex). For that, @Yanick Rochon's one does the trick. Appart from that, your provided code is mistyped (should be parseLong). –  Xtreme Biker Nov 19 '13 at 7:52

For what's worth, you can also use the BigInteger class :

String string  = "11011100010000010001000000000000";
String string1 = "00000000010000110000100000101100";

System.out.println(new BigInteger(string1, 2).toString(16));
System.out.println(new BigInteger(string, 2).toString(16));
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You can use Long instead of Integer, (Long.parseLong and Long.toHexString methods).

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If you want to parse to integer, the range should be

10000000000000000000000000000000 to 01111111111111111111111111111111

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