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Actually my system gives Long.MAX_VALUE as 9223372036854775807

But when I write my program like this,

package hex;

/**
 *
 * @author Ravi
 */
public class Main {

    /**
     * @param args the command line arguments
     */
    public static void main(String[] args) {
        // TODO code application logic here

        long x = 9223372036854775807;

        System.out.println(x);

    }

}

I am getting compile time error. Can anyone explain the reason?

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long x = 922337203685477580L –  jjnguy Aug 25 '11 at 20:31
    
@user650521 You don't want answers for you new questions, do you? If one of these answer has been helpful - and I think it was - why don't you click on the outlined ✓ check mark on the left? –  glglgl Mar 5 '12 at 11:15
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4 Answers

up vote 8 down vote accepted

With no suffix, it's an int constant (and it overflows), not a long constant. Stick an L on the end.

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You might want to try using like this:

long x = 9223372036854775807L;

Without the L at the end, you'll be declaring an int.

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9223372036854775807 is an int literal, and it's too big to fit in an int.
The fact that yo assign the int literal to a long makes no difference.

You need to create a long literal using the L suffix.

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if you don't specify what kind of number literal is, then int is assumed. You need to specify that you want long by adding "l" or "L" (better, because "l" looks like 1) at the end of the number:

long x = 9223372036854775807L;

instead of:

long x = 9223372036854775807;
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