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This question already has an answer here:

I was looking at the Math sources in the Android Framework and here is what the round() method looks like :

public static int round(float f) {
    // check for NaN
    if (f != f) {
        return 0;
    }
    return (int) floor(f + 0.5f);
}

I'm trying to wrap my head around what the first check does without success. How could f be different from itself ? I also can't think of any test case that would make this any different... Any idea ?

marked as duplicate by user207421, laalto, flx, Fantômas, fadden Mar 5 '14 at 1:10

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    See JLS 15.21.1. That's just how it's defined. – ajb Feb 18 '14 at 1:52
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How could f be different from itself?

If f is a NaN it will test as different from all floats including another NaN. That's the definition. From JLS #15.21.1:

"If either operand is NaN, then the result of == is false but the result of != is true. Indeed, the test x!=x is true if and only if the value of x is NaN."

I also can't think of any test case that would make this any different... Any idea?

Err, Float.NaN.

  • I find this a bit confusing but I guess it makes sense. Thanks EJP, will mark the answer as accepted when possible – ben Feb 18 '14 at 1:58
  • @downvoter You're arguing with the JLS here. If you have an over-riding citation please provide it. – user207421 Jul 3 '14 at 6:50
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NaN is the only variable for which x != x holds true. Take a look at this answer for more details.

  • Thanks! This thread definitely made it easier for me to understand the reason why it's how it works – ben Feb 18 '14 at 1:59

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