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We get compile time error when integer is divided by zero whereas in case of double there is no compilation error but at run-time we get infinity/NaN as the result. Any idea why int & double have different behavior when it comes to divide by zero exception?

void Main()
{
    int number = 20;
    var result1 = number/0; // Divide by zero compile time exception

    double doubleNumber = 20;
    var result2 = doubleNumber/0.0; // no compile time error. Result is infinity or NaN
}
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Because that is how math for the two number systems is defined –  Marc Gravell Mar 22 '12 at 8:02
    
possible duplicate of Inconsistency in divide-by-zero behavior between different value types –  Phil Mar 22 '12 at 8:03
    
Simply because there's no int equivalent for Infinity/-Infinity/NaN. Floating-point math is done in a very different way than integer math. –  Robert Rouhani Mar 22 '12 at 8:04
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3 Answers

up vote 5 down vote accepted

Because that's how it's defined. Whereas with integers there are no special values for infinity and NaN, so the compiler throws an error if it can spot the problem at compile time.

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Because of their mathematical background. Infinity is defined for floating point numbers but not for integers.

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theoretically speaking division by zero should result in infinity, but the integer datatype has nothing to represent infinity. the double datatype does, so there is no need to throw an exception there.

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