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I was reading JLS8 4.2.3 there I found concept for Float NaN and Double NaN. When I opened the source code of Float and Double class, and tried following code:

1st condition:
if (Float.NaN == Float.intBitsToFloat(0x7fc00000)) 
    System.out.println("Both are equal");

2nd condition:
if (Float.NaN == (0.0f / 0.0)) {

According to documentation: An NaN is

 * A constant holding a Not-a-Number (NaN) value of type
 * {@code float}.  It is equivalent to the value returned by
 * {@code Float.intBitsToFloat(0x7fc00000)}.

Then why my both conditions are false. And in eclipse for 2nd condition I was getting warning: Dead Code.

Same thing with Double NaN.

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3 Answers 3

up vote 2 down vote accepted

Because floating-point defines NaN == NaN to be false. (This makes sense; 0/0 and acos(2) are both NaN, but that doesn't mean that they're equal to each other in any useful sense.)

Use Float.isNaN() to determine whether something is NaN.

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why I was getting warning: Dead Code? – Vishrant Mar 23 '14 at 11:51
@Vishrant: Because the compiler knows that comparison will never be true. You'd get the same thing with if (1 == 2) { ... }. – Oliver Charlesworth Mar 23 '14 at 11:52

This is because NaN is, by definition, not equal to anything. It is used to model a something, and all we know about this something is that it is not a number.

Think of it like this: A chair is NaN, your screen is also NaN (not a number), yet, your chair is not the same as your screen.

Likewise, given that Jane is not your mother and John is not your mother, it makes no sense to insist that Jane and John must be the same person.

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why I was getting warning: Dead Code? – Vishrant Mar 23 '14 at 11:51
Because Eclipse knows the above and can tell at compile time that the then branch will never be entered. – Ingo Mar 23 '14 at 14:35

As a complement to other answers, you can test whether a float is NaN using either of:


or:, myFloat) == 0

The same is true for Double.NaN; and the Double class has a similar method.

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