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I am newbie to Java and I have written function to convert string to integer

   if ( data != null )
   {
        int theValue = Integer.parseInt( data.trim(), 16 );
        return theValue;
   }
   else
       return null;

I have a string which is 6042076399 and it gave me errors:

Exception in thread "main" java.lang.NumberFormatException: For input string: "6042076399"
    at java.lang.NumberFormatException.forInputString(NumberFormatException.java:48)
    at java.lang.Integer.parseInt(Integer.java:461)

Is this not the correct way to convert string to integer?

Thanks Ding

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Note that by specifying 16 as the second parameter to parseInt, you are parsing the string as a hexadecimal number. –  Jesper Aug 19 '10 at 8:03

5 Answers 5

up vote 2 down vote accepted

Here's the way I prefer to do it:

public static void main(String[] args) {
    int i = 0;
    String s = "87987";
    try {i = new Integer(s);}
    catch (NumberFormatException ex) {
        System.out.println("s was not integer: " + s);
        System.exit(0);
    }
    System.out.println(i);
}

However you can also replace the 'new Integer(s)' bit with 'Integer.parseInt(s)' and it should work just as well.

The reason you have to have a try-catch block surrounding this is because your program's execution will have to deviate should 's' end up being not a number (e.g. if s was "348fk@!"). You obviously can't perform any operations on that, so this is Java's way of saying "something went wrong, here's your opportunity to fix it".

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Unless things have changed, Integer.parseInt() is the preferred method as it will cache commonly used values to improve performance. Creating a new Integer will always create a new Integer object. However, this was pre-Java 5 - I wouldn't be surprised if both do the same thing now. –  Thomas Owens Aug 19 '10 at 15:26

An Integer can't hold that value. 6042076399 (413424640921 in decimal) is greater than 2147483647, the maximum an integer can hold.

Try using Long.parseLong.

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1  
He's using primitive types. I would recommend a long before a Long. I would also possibly even recommend a BigInteger before a Long, although I'm not entirely sure about that. –  Thomas Owens Aug 19 '10 at 0:04

That's the correct method, but your value is larger than the maximum size of an int.

The maximum size an int can hold is 231 - 1, or 2,147,483,647. Your value is 6,042,076,399. You should look at storing it as a long if you want a primitive type. The maximum value of a long is significantly larger - 263 - 1. Another option might be BigInteger.

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That string is greater than Integer.MAX_VALUE. You can't parse something that is out of range of integers. (they go up to 2^31-1, I believe).

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In addition to what the others answered, if you have a string of more than 8 hexadecimal digits (but up to 16 hexadecimal digits), you could convert it to a long using Long.parseLong() instead of to an int using Integer.parseInt().

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