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I am getting a "Comparison Method violates its general contract" after compiling some Java code in Java 7, and then running it.

I have read Comparison method violates its general contract! Java 7 only and realize that there is something wrong with my code that was ignored in previous versions of Java. However I cannot work out what is wrong with my code. The Collections.sort() generates the error.

My code is:

   public Comparator sortBySmoothDays() {
    Comparator c = new Comparator() {
        public int compare(Object arg0, Object arg1) {
            Date date0 = ((PosObject)arg0).getDate();
            Date date1 = ((PosObject)arg1).getDate();

            double d1 = MyUtils.calcSmoothDays(date0, new Date());
            double d2 = MyUtils.calcSmoothDays(date1, new Date());
            if (d1 >= d2) {
                return 1;
            }
            else {
                return -1;
            }   
        }
    };
    return c;
}


Comparator c = ComparatorUtils.getInstance().sortBySmoothDays();
Collections.sort(posList, c);

Can anyone help? Thank you!

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JFI: Throwing this exception is a new Java7 feature. The old behavior can be configured with a new system property: java.util.Arrays.useLegacyMergeSort See stackoverflow.com/a/8417446/450812 –  alfonx Mar 23 '12 at 14:13
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3 Answers

up vote 15 down vote accepted

Your comparator does not return 0 if the objects are equal. In your current implementation, you return -1 if they are equal. Update your code to this:

Double d1 = new Double(MyUtils.calcSmoothDays(date0, new Date()));
Double d2 = new Double(MyUtils.calcSmoothDays(date1, new Date()));

return d1.compareTo(d2);
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Thank you very much! –  gordon613 Feb 28 '12 at 17:47
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With your comparator, every object compares greater than itself: compare(x,x) always returns one.

This violates the following requirement:

The implementor must ensure that sgn(compare(x, y)) == -sgn(compare(y, x)) for all x and y.

The above requirement implies that compare(x,x) must return zero.

I would recommend reading the contract and making sure your implementation fulfils it.

In particular, if date0.equals(date1), the comparator probably ought to return zero right away, without doing any floating-point conversions and comparisons.

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More generally, no two objects can ever be equal to each other using this method. There is no code path that yields the 0 (or equal) result. –  Ian McLaird Feb 28 '12 at 17:27
    
Thank you very much! –  gordon613 Feb 28 '12 at 17:47
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Isnt the issue that if two objects compare equal i.e. calcSmoothDays returns the same value, then you could have a situation where compare(object1,object2) == 1, and compare (object2,object1) == 1 also?

So it implies that object1 > object 2 and object2 > object 1...

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