Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Lately I've written a project in Java and noticed a very strange feature with double/Double implementation. The double type in Java has two 0's, i.e. 0.0 and -0.0 (signed zero's). The strange thing is that:

0.0 == -0.0

evaluates to true, but:

new Double(0.0).equals(new Double(-0.0))

evaluates to false. Does anyone know the reason behind this?

share|improve this question
3  
The usual way to avoid this is to add 0.0. See here for a little more detail. –  OldCurmudgeon Feb 8 '13 at 11:28
add comment

3 Answers

up vote 19 down vote accepted

It is all explained in the javadoc:

Note that in most cases, for two instances of class Double, d1 and d2, the value of d1.equals(d2) is true if and only if

   d1.doubleValue() == d2.doubleValue() 

also has the value true. However, there are two exceptions:

  • If d1 and d2 both represent Double.NaN, then the equals method returns true, even though Double.NaN==Double.NaN has the value false.
  • If d1 represents +0.0 while d2 represents -0.0, or vice versa, the equal test has the value false, even though +0.0==-0.0 has the value true.

This definition allows hash tables to operate properly.


Now you might ask why 0.0 == -0.0 is true. In fact they are not strictly identical. For example:

Double.doubleToRawLongBits(0.0) == Double.doubleToRawLongBits(-0.0);

is false. However, the JLS requires ("in accordance with the rules of the IEEE 754 standard") that:

Positive zero and negative zero are considered equal.

hence 0.0 == -0.0 is true.

share|improve this answer
    
And the JLS requires that because the IEEE 754 requires it. –  ninjalj Feb 9 '13 at 13:47
    
@ninjalj Indeed - Added that clarification. –  assylias Feb 9 '13 at 19:12
add comment

It important to undertand the use of signed zero in the Double class. (Loads of experienced Java programmers don't).

The short answer is that (by definition) "-0.0 is less than 0.0" in all the methods provided by the Double class (that is, equals(), compare(), compareTo(), etc)

Double allows all floating point numbers to be "totally ordered on a number line". Primitives behave the way a user will think of things (a real world definition) ... 0d = -0d

The following snippets illustrate the behaviour ...

final double d1 = 0d, d2 = -0d;

System.out.println(d1 == d2); //prints ... true
System.out.println(d1 < d2);  //prints ... false
System.out.println(d2 < d1);  //prints ... false
System.out.println(Double.compare(d1, d2)); //prints ... 1
System.out.println(Double.compare(d2, d1)); //prints ... -1

There are other posts that are relevant and nicely explain the background ...

1: Why do floating points have signed zeros?

2: Why is Java's Double.compare(double, double) implemented the way it is?

And a word of caution ...

If you don't know that, in the Double class, "-0.0 is less than 0.0", you may get caught out when using methods like equals() and compare() and compareTo() from Double in logic tests. For example, look at ...

final double d3 = -0d; // try this code with d3 = 0d; for comparison

if (d3 < 0d) {     
    System.out.println("Pay 1 million pounds penalty");
} else {           
    System.out.println("Good things happen"); // this line prints
}


if (Double.compare(d3, 0d) < 0) { //use Double.compare(d3, -0d) to match the above behaviour
    System.out.println("Pay 1 million pounds penalty"); // this line prints
} else {                              
    System.out.println("Good things happen"); 
}

and for equals you might try ... new Double(d3).equals(0d) || new Double(d3).equals(-0d)

share|improve this answer
add comment

By using == statement you are comparing values. With equals your are comparing objects.

share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.