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.

I am trying to compare the value of 2 instances of x inside an iterator.

x is a reference type containing its own data members. I am trying to compare one instance of x against another to determine if the values inside each are the same.

if (x.equals(x))

keeps evaluating to true when actually the value of each instance of x is different.

Cheers.

share|improve this question
    
what do you mean by 'each instance of x is different'? Can you actually provide a more concrete code? –  notnoop Jul 9 '09 at 1:46
    
x.equals(x) is always going to be true.... so will x==x What do you really mean? –  hhafez Jul 9 '09 at 1:47
    
Unless you have a completely out of whack implementation of equals(), you are comparing the same instance with itself by calling x.equals(x), and it will always return true. What are you trying to do exactly? –  Jack Leow Jul 9 '09 at 1:47
    
@Override public boolean equals(Object o){ returns ! super.equals(o); } :D –  hhafez Jul 9 '09 at 1:48
    
Please tell me that isn't the actual code you're using. From what you've posted, you're checking if object x is equal to itself, which should always return true. –  InverseFalcon Jul 9 '09 at 1:50

6 Answers 6

up vote 8 down vote accepted

Assuming your code doesn't really look like this

X x = new X();
if(x.equals(x))

but more like

X x = new X();
X y = new X();

if(x.equals(y)) { }

And you are getting wrong values for x.equals(y) then your implementation of equals is broken.

Go to your Class X and check how equals is implemented. If it is not implemented in X check in the super class.

share|improve this answer

This is a hard question to answer with the details given. They have to be objects and not primitives to have a .equals method. So has the equals method been overridden in a way that is causing faulty comparisons to be done? That would be the place that I would be looking at.

share|improve this answer

The equals method in the Object class performs an instance-equals operation. it is common, however, for subclasses of Object to override this method to perform a relative-equals operation, where the values within the target object are tested against the values of the object in question. In your case, you are most likely using a subclass of Object that has overriden the equals method. It would be good to know how the equals method of your class X is implemented.

share|improve this answer

It sounds like you are comparing references and not data.

EDIT: From the API doc for Object: "The equals method for class Object implements the most discriminating possible equivalence relation on objects; that is, for any non-null reference values x and y, this method returns true if and only if x and y refer to the same object (x == y has the value true). "

e.g. If 'X' or it's parent classes do not override equals then when you call equals then it will be comparing the references, which if they are the same object will always be the equal.

By the sounds of it you need to override the equals method in the class 'X', but then again, what you say seems to indicate that they are the same reference anyhow?

share|improve this answer
    
yuh, how do I compare the data? –  burntsugar Jul 9 '09 at 1:49
    
using equals() that is what it is used for –  hhafez Jul 9 '09 at 1:49
    
No they are different references. Trying to override equals now. Cheers –  burntsugar Jul 9 '09 at 2:06

I'm going to assume that your two X objects are actually different objects, and not mistakenly the same object. In this case, the problem is the equals() implementation for that class. Check your class and its superclasses for the equals() implementation, and make sure its actually comparing intelligently. If necessary, write your own.

class Square
{
    public int length;

    public boolean equals( Square s )
    {
        return this.length == s.length;
    }
}
share|improve this answer

If you decide to override equals(), also override hashcode()

share|improve this answer

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.