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.

This might be a trivial question, but I have not found anything about it, so here goes:
When implementing the Comparable interface, we are supposed to define the method compareTo(), so that the following is true according to the documentation:

  • sgn(x.compareTo(y)) == -sgn(y.compareTo(x)) for all x and y.

  • The relation is transitive: (x.compareTo(y)>0 && y.compareTo(z)>0) implies x.compareTo(z)>0.

  • x.compareTo(y)==0 implies that sgn(x.compareTo(z)) == sgn(y.compareTo(z)), for all z.

Now, the part that gets confusing is the return value, that is specified as follows:

Returns a negative integer, zero, or a positive integer as this object is less than, equal to, or greater than the specified object.

It seems that most implementations return 1, -1 or 0, even though it is not mentioned as a requirement that the return value is limited in this way.
The following code thus works for Sorting a list (using Collections.sort()) containing instances of a class, Foo:

public int compareTo(Foo other){
    return this.value > other.value? 1 : this.value < other.value ? -1 : 0;
}

This however do not:

public int compareTo(Foo other){
    return (int)(this.value - other.value);
}

Where value is a long, and the difference between the values do not exceed Integer.MAX_VALUE.

Am I missing something here, or is the return value required to be exactly 1, -1 or 0, contradictory to the documentation?

Update: Thanks for all your answers, but it seems that the human factor was to blame here. I mentioned that the calculated difference was less than Integer.MAX_VALUE, which should mean that there is no overflow, but my calculations were wrong, so I did actually get overflow, which caused the strange results.

share|improve this question
add comment

3 Answers

up vote 7 down vote accepted

The contract was so flexible to allow this.value - other.value idioms (which later turned out to be incorrect due to integer overflow). But in some cases it is still valueable, like str.length() - str2.length(). It is unlikely impossible that string or array size comparison will overflow since the minimum length is 0 and the maximum is Integer.MAX_VALUE (0 - Integer.MAX_VALUE is still greater than Integer.MIN_VALUE) so it is convenient when you need to sort by length/size.

Also comparing to 0 (greater-than/less-than) is often faster/genrates smaller bytecode/assembly than comparing to 1/-1, so why limit the users? You are absolutely free to use any positive/negative value.

share|improve this answer
    
There is no such a limitation, you can return any negative or positive integer you want, refer to Effective Java. –  Amir Pashazadeh Feb 1 '12 at 11:35
    
Marked this as the solution as it was what led me to find the actual problem. –  Jave Feb 1 '12 at 13:01
add comment

Nope, you can return any integer you want. What exactly is the error you are getting?

Please test the following class:

  public static void main(String[] args) {

        final ToSort sort0 = new ToSort(-100);
        final ToSort sort1 = new ToSort(1);
        final ToSort sort2 = new ToSort(100);


        List<ToSort> elements = new ArrayList<ToSort>(){{add(sort2); add(sort1); add(sort0);}};
        System.out.println("Unsorted:" + elements.toString());

        Collections.sort(elements);

        System.out.println("Sorted:" + elements.toString());

    }

    static class ToSort implements Comparable{

        long value;
        public ToSort(long value){
            this.value = value;
        }

        @Override
        public int compareTo(Object other) {
            return (int) (this.value - ((ToSort)other).value);
        }

        public String toString(){
            return ""+value;
        }
    }

I get the following output:

run:
Unsorted:[100, 1, -100]
Sorted:[-100, 1, 100] 
BUILD SUCCESSFUL (total time: 0 seconds)

You might want to add a breakpoint in your compareTo method and debug to check if you are running what you are expecting.

share|improve this answer
    
No error, the list is just not sorted property. The double return was a copy-paste mistake. –  Jave Feb 1 '12 at 11:53
    
new Long(1).longValue() is 1L so (int)(new Long(1).longValue() - other) is 1 - (int) other –  Peter Lawrey Feb 1 '12 at 12:45
    
@PeterLawrey indeed it is, that was just for demonstration purposes - already edited, but (int) (long-long) gives the same results as ((int) long) - ((int) long), right? –  Marcelo Feb 1 '12 at 12:56
1  
@Jave Can you give an example of this? I am betting you can't. ;) –  Peter Lawrey Feb 1 '12 at 13:34
1  
@PeterLawrey: Seems you win the bet. I thought that casting a long to integer (or any other primitive cast to fewer bits) just truncated the results. Learning so much today! :p –  Jave Feb 1 '12 at 14:11
show 1 more comment

Javadocs also say:

In the foregoing description, the notation sgn(expression) designates the mathematical signum function, which is defined to return one of -1, 0, or 1 according to whether the value of expression is negative, zero or positive.

EDIT:

Yes, i misunderstood. you are right.

share|improve this answer
    
Yes, but it is never mentioned that you have to use sgn on the result. –  Jave Feb 1 '12 at 11:24
    
true. i misunderstood. –  Azodious Feb 1 '12 at 11:31
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.