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What is an elegant, readable and non-verbose way of comparing two floating point value for exact equality?

As simple as it may sound, its a wicked problem. The == operator doesn't get the job done for NaN and also has special treatment for zero:

(+0.0 == -0.0) -> true
Double.NaN == Double.NaN -> false

But I want to determine if two values are exactly the same (but I do not care for different NaN patterns, so any NaN == any other NaN -> true).

I can do this with this ugly Monster piece of code:

Double.doubleToLongBits(a) == Double.doubleToLongBits(b)

Is there a better way to write this (and make the intent obvious)?

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You don't day why you want to do this. If they really are floating point numbers your answer won't be meaningful. –  Julian Mar 22 '13 at 18:18
    
@Julian See PeterLawrey's answer for one example where it is very meaningful. My application however is the equals() method of an object where a float is part of the primary key (not by my choice). Floating point usually defies intuitive assumptions, so I am careful to have the edge cases covered. –  Durandal Mar 25 '13 at 10:53
    
Sorry, you could not do it better, your "ugly Monster piece" is already perfect... –  Thorsten S. Mar 25 '13 at 11:36

2 Answers 2

up vote 9 down vote accepted

What you've got is already the best way of doing it, I'd say. It makes it clear that you're interested in the bitwise representation of the value. You happen to be converting those bits to long as a convenient 64-bit type which doesn't have any funky behaviour.

If you don't want it appearing frequently in your codebase, just add a method to wrap it:

public static boolean bitwiseEqualsWithCanonicalNaN(double x, double y) {
    return Double.doubleToLongBits(x) == Double.doubleToLongBits(y);
}

Note that as per your question, this does not differentiate between different NaN values. If you wanted to do this at a later date, you'd need to use Double.toRawLongBits.

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Mhhh, both your and Peter's answer have their appeal. For the sake of clarity I think the static helper is a little better, since I can just put my comment on the method and anyone stumbling over the call(s) will arrive there. Still thinking about a good method name though. –  Durandal Mar 22 '13 at 14:48

You can use

Double.compare(a, b) == 0

From the javadoc for compareTo

  • Double.NaN is considered by this method to be equal to itself and greater than all other double values (including Double.POSITIVE_INFINITY).
  • 0.0d is considered by this method to be greater than -0.0d.
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Will that differentiate between the two 0s properly too? –  Jon Skeet Mar 22 '13 at 14:26
    
It will do NaNs. Checking for -0 and 0 –  Peter Lawrey Mar 22 '13 at 14:27
1  
I've just checked. It does. Nice - although not obviously correct, I'd say. (I would intuitively have expected that to claim that positive and negative zero are equal. I prefer the code which makes it stonkingly obvious that you're interested in the precise bits.) –  Jon Skeet Mar 22 '13 at 14:27
1  
@KlasLindbäck: Yes, I agree that's not very obvious :) I've edited my answer to have a more specific wrapper method name. –  Jon Skeet Mar 22 '13 at 14:35
1  
@JonSkeet, to me: Double.compare is the most intuitive one. It must discern between neg/pos (virtually everything), otherwise stuff like TreeMap won't work correctly - but I might be biased. –  bestsss Mar 23 '13 at 12:14

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