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public class Test {

    public static void main(String[] args) {    
        int sum=0;
        for(int i=1;i<10;i++)
            sum = sum+i*i*i*i*i*i*i*i*i*i;
        System.out.println(sum);                

    }    
}

OUTPUT:619374629

    for(int i=1;i<10;i++)
        sum = sum+i*i*i*i*i*i*i*i*i*i*i;
    System.out.println(sum);        

       OUTPUT:
        -585353335

In the second output i thought the integer range crossed.But why it is giving -ve number.It need to give me an error.What is the reason for this behaviour?

Thanks in advance...

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marked as duplicate by Denis Tulskiy, dunni, Sankar Ganesh, hexblot, Royston Pinto Jun 3 '13 at 8:46

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
Why downvote.give me the reason who down voted this –  PSR Jun 3 '13 at 4:03
3  
with out saying any reason giving the downvote is not correct –  PSR Jun 3 '13 at 4:04
3  
I didn't downvote, but I understand why they might: this isn't a real question about solving a real problem. It's just a basic misunderstanding of programming 101. Integer overflow doesn't throw exceptions in Java. –  Lee Daniel Crocker Jun 3 '13 at 4:11
    
@LeeDanielCrocker basically most of questions here are based on a "misunderstanding" at some point... Making a comment to point to a duplicate is Ok (as there are tons on questions like this one, and a simple search would yields results - that could deserve -1). But some people need to be taught that int (Java) has only 32 bits, and doesn't throw exceptions when overflowing - while div by zero does... –  ring0 Jun 3 '13 at 4:13
    
If that misunderstanding were in code that actually does something, I'd agree. But this isn't real code. –  Lee Daniel Crocker Jun 3 '13 at 4:17

4 Answers 4

up vote 4 down vote accepted

You have overflowed the size of a 32 bit integer.

Consider what happens when i is equal to 10:

sum = sum + 100000000000 //1 with 11 zeroes

But the maximum positive number that can be stored in a 32 bit integer is only about 2 billion (2 with nine zeroes).

In fact, it gets even worse! The intermediate calculations will be performed with limited precision, and as soon as the multiplication of 10*10*10*10... overflows, then the 10s will be being multiplied with a weird negative number, and be already wrong.

So the number you end up with is not seeming to follow any rules of arithmetic, but in fact it makes perfect sense once you know that primitive integers have limited storage.

The solution is to use 64-bit long and hope you don't overflow THAT too, if you do then you need BigInteger.

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when i used long instead of int it is ok.But i want to know the reasson –  PSR Jun 3 '13 at 4:06
    
@PSR This is the reason –  Patashu Jun 3 '13 at 4:07
    
Ya i understand.Thanks for quick reply –  PSR Jun 3 '13 at 4:07
    
@ChristopherW i see it now.Thanks for support –  PSR Jun 3 '13 at 4:08
    
@PSR Even if you use long this will happen with larger numbers. Try i<1000 instead. –  Peter Lawrey Jun 3 '13 at 7:06

Java defines integer math as signed 2s-complement mod 2^32 (for int) and 2^64 (for long). So any time that the result of an int multiply is 2^31 or higher, it wraps around and becomes a negative number. That's just the way integer math works in java.

Java spec

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that's more like the way processors work –  Denis Tulskiy Jun 3 '13 at 4:20
    
would be nice to add a reference to en.wikipedia.org/wiki/Two%27s_complement –  Denis Tulskiy Jun 3 '13 at 4:21
    
@DenisTulskiy: Added relevant reference –  Chris Dodd Jun 3 '13 at 15:30

As you predicted, you passed the integer range, though causing infinite values (as the sign [the highest bit] gets touched).

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You are using the primitive type. So, when an integer overflows, it will only print out the bits contained in it which is negative. If you want error, try Integer.

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