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Why such different answers on dividing a number by zero:

My code:

class Test {
  public static void main(String[] args){

    int a = (int)(3/0.0F);
    System.out.println(a);

    System.out.println(3/0.0F);

    System.out.println(3/0);
  }
}

Output:

2147483647
Infinity
Exception in thread "main" java.lang.ArithmeticException: / by zero

Every time I divide a number by an integer (byte, short, int, long) it throws ArithmeticException, which is not the case when done with real numbers (float, double). Why?

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2  
Because floating-point is designed to return NaN in that circumstance. This is an out-of-band value. There are no out-band values for integers so an exception is required. –  EJP Jul 22 at 4:22
1  
In case you didn't know OP - NaN stands for "Not a Number". –  Takendarkk Jul 22 at 4:23
1  
Just so you know, the 2147483647 output is because you're casting infinity (as shown in next output) to an integer, so it is going to keeping rolling over the integer range and end up at the largest possible value (2^31-1 or 2147483647) –  mike yaworski Jul 22 at 4:39
1  
@HimanshuAggarwal JLS #5.1.3:"‌​The value must be too large (a positive value of large magnitude or positive infinity), and the result of the first step is the largest representable value of type int or long." –  EJP Jul 22 at 4:43
2  
@EJP A finite number divided by zero does not produce NaN but an infinity in floating-point. Only 0.0/0.0 produces NaN. –  Pascal Cuoq Jul 22 at 7:21

1 Answer 1

up vote 5 down vote accepted

From JLS §15.17.2:

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

with the exception that:

if the value of the divisor in an integer division is 0, then an ArithmeticException is thrown.

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The obvious question is "Why did they write the specification in a way that does not treat floating point and integer arithmetic congruently?" –  mike z Jul 22 at 4:33
4  
@mikez The obvious answer is "IEEE 754", and the lack of a way to implement that for integers because there is no integral NaN. –  EJP Jul 22 at 4:38

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