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I'm solving a few exercises from HackerRank.com and the code works perfectly on Netbeans and even in the page compiler for test cases, but when I submit the code it throws me this error in every test(except the last):

ArithmeticException: thrown at Solution.main(Solution.java:15)

Here's the code:

     Scanner s = new Scanner(System.in);
     int a = s.nextInt(),j=1;
     for(int i=0; i<a; i++){
         int b = s.nextInt(), c =s.nextInt();
         for(j = b*c; j>0;j--) {
         if((b*c)%(j*j)==0){
             System.out.println(b*c/(j*j));
             break;}
         } 
     }

Line 15 is:

    if((b*c)%(j*j)==0){

What's wrong with the statement? I've set 'j' to be different from 0 in the for loop, so no reason for dividing by zero, which was the only explanation I could find by myself.

Thank you in advance.

share|improve this question
    
Many conditions besides divide-by-zero can trigger an ArithmeticException. An operation that results in an imaginary number, for instance, or an integer overflow. If you're sure it's not a div0, chances are it's an overflow. –  Michael Petrotta Jun 5 '13 at 3:30
    
may be you got 0 when insert value from s.nextInt() –  Ahmad Azwar Anas Jun 5 '13 at 3:30
    
Don't you get ahy other information form the exception?? –  Thihara Jun 5 '13 at 3:32
    
Overflow? You have a divisor of j squared, which could possibly result in zero value. –  infgeoax Jun 5 '13 at 3:41
    
They don't show the test cases, but I believe that they don't insert 0, because it is supposed to be a length measure. And there's no other information, that's all it says. –  plethora Jun 5 '13 at 3:42

2 Answers 2

up vote 0 down vote accepted

If b*c is large, j will eventually equal 2147418112 65536 (=216) and j*j will be 0 (remember, Java ints are always 32-bits). Performing % when the divisor is 0 results in your ArithmeticException. Note that any multiple of 65536 will cause this error. The 2147418112 (=231-216) originally referenced above is just the largest multiple that will fit in an int.

Example code (you can run it yourself at http://ideone.com/iiKloY):

public class Main
{ 
     public static void main(String []args)
     {
        // show that all multiples of 65536 yeild 0 when squared
        for(int j = Integer.MIN_VALUE; j <= Integer.MAX_VALUE - 65536; j += 65536)
        {
            if((j*j) != 0)
            {
                System.out.println(j + "^2 != 0");
            }
        }
        System.out.println("Done!");
    }
}
share|improve this answer
    
You're right! I would never think about 'int' properties. Thank you! –  plethora Jun 5 '13 at 4:02
    
@Bobby Thanks. Note that I made a mistake, the real limit is 2^16 (or 65536), which should have been obvious to me from the start. Guess I need to go to bed :) –  jerry Jun 5 '13 at 4:07
    
No problem, I got what you meant. =] –  plethora Jun 5 '13 at 15:23

You are seeing an overflow. Try the following input, and you can get the ArithmeticException.

1
256 256
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