50

Why doesn't this code throw an ArithmeticException? Take a look:

public class NewClass {

    public static void main(String[] args) {
        // TODO code application logic here
        double tab[] = {1.2, 3.4, 0.0, 5.6};

        try {
            for (int i = 0; i < tab.length; i++) {
                tab[i] = 1.0 / tab[i];
            }
        } catch (ArithmeticException ae) {
            System.out.println("ArithmeticException occured!");
        }
    }
}

I have no idea!

9
  • so how can I change my code to get an ArithmeticException? (I dont want to change the type of an array to int)? – Katie Jan 3 '13 at 11:30
  • 3
    This is duplicated stackoverflow.com/questions/5291606/… – Seba Jan 3 '13 at 11:30
  • 2
    if (tab[i] == 0) throw new ArithmeticException();. – assylias Jan 3 '13 at 11:31
  • @assylias: Im not so sure about that, I read somewhere that we shouldnt throw an ArithmerticException – Katie Jan 3 '13 at 11:32
  • 1
    Katie, you are overthinking. :) assylias solution is just fine. If, for some reason, you don't want to throw ArithmeticException, just throw the exception you want. – gd1 Jan 3 '13 at 11:34
25

Why can't you just check it yourself and throw an exception if that is what you want.

    try {
        for (int i = 0; i < tab.length; i++) {
            tab[i] = 1.0 / tab[i];

            if (tab[i] == Double.POSITIVE_INFINITY ||
                    tab[i] == Double.NEGATIVE_INFINITY)
                throw new ArithmeticException();
        }
    } catch (ArithmeticException ae) {
        System.out.println("ArithmeticException occured!");
    }
2
  • 12
    You need to check for Double.isNaN() as well. – Peter Lawrey Jan 3 '13 at 12:34
  • 1
    This doesn't answer the question. – Max Barraclough Jul 27 '20 at 13:08
80

IEEE 754 defines 1.0 / 0.0 as Infinity and -1.0 / 0.0 as -Infinity and 0.0 / 0.0 as NaN.

By the way, floating point values also have -0.0 and so 1.0/ -0.0 is -Infinity.

Integer arithmetic doesn't have any of these values and throws an Exception instead.

To check for all possible values (e.g. NaN, 0.0, -0.0) which could produce a non finite number you can do the following.

if (Math.abs(tab[i] = 1 / tab[i]) < Double.POSITIVE_INFINITY)
   throw new ArithmeticException("Not finite");
4
  • PeterLawrey: so how can I change my code to get an ArithmeticException? (I dont want to change the type of an array to int) – Katie Jan 3 '13 at 11:29
  • 2
    @Katie you can check if(tab[i] == 0.0){throw new ArithmeticException();} before tab[i] = 1.0 / tab[i]; – codeMan Jan 3 '13 at 11:37
  • 3
    BTW 0.0 == -0.0 so you don't have to check for two values. – Peter Lawrey Jan 3 '13 at 12:31
  • 1
    Suggested edit queue is full, so here a not broken link to the IEEE 754 ieeexplore.ieee.org/document/30711 – Johannes Rabauer Sep 15 '20 at 6:34
21

That's because you are dealing with floating point numbers. Division by zero returns Infinity, which is similar to NaN (not a number).

If you want to prevent this, you have to test tab[i] before using it. Then you can throw your own exception, if you really need it.

11

0.0 is a double literal and this is not considered as absolute zero! No exception because it is considered that the double variable large enough to hold the values representing near infinity!

1
  • 1
    No, 0.0 really is 0 and the IEEE floating point spec defines the result as a special value "positive infinity", not merely a very large value. – Sean Owen May 18 '13 at 15:12
9

Java will not throw an exception if you divide by float zero. It will detect a run-time error only if you divide by integer zero not double zero.

If you divide by 0.0, the result will be INFINITY.

6

When divided by zero

  1. If you divide double by 0, JVM will show Infinity.

    public static void main(String [] args){ double a=10.00; System.out.println(a/0); }
    

    Console: Infinity

  2. If you divide int by 0, then JVM will throw Arithmetic Exception.

    public static void main(String [] args){
        int a=10;
        System.out.println(a/0);
    }
    

    Console: Exception in thread "main" java.lang.ArithmeticException: / by zero

1
  • NaN not Infinity :) – San4musa Nov 23 '20 at 1:27
3

There is a trick, Arithmetic exceptions only happen when you are playing around with integers and only during / or % operation.

If there is any floating point number in an arithmetic operation, internally all integers will get converted into floating point. This may help you to remember things easily.

0

This is behaviour of floating point arithmetic is by specification. Excerpt from the specification, § 15.17.2. Division Operator /:

Division of a nonzero finite value by a zero results in a signed infinity. The sign is determined by the rule stated above.

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