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I tried to override equals and hashcode methods in a class. It is a subclass of another class which does not implement the equals method and hashCode methods.

Eclipse gave the below warning .

  The super class ABC does not implement equals() and hashCode() methods.
  The resulting code may not work correctly. 

Why is the above warning given ? Under what circumstances it may not work correctly ?

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2  
A good overview: artima.com/lejava/articles/equality.html –  Michael Brewer-Davis Oct 19 '11 at 16:38

2 Answers 2

up vote 5 down vote accepted

If you say a.equals(b) versus b.equals(a) it is reasonable to expect the behaviour to be the same. But if they are of corresponding types B and A related by inheritance and only one of them properly implements equals then the behaviour will be different in those two examples.

Here, A is the superclass and does not implement equals at all (so it inherits java.lang.Object.equals). Subclass B overrides equals to depend on the name field.

class A {

  String name;

  public A() {
    this.name = "Fred";
  }

}

class B extends A {

  public boolean equals(Object o) {
    A a = (A)o;
    return a != null && a.name.equals(this.name);
  }
}

public class Test {

  public static void main(String[] args) {

    A a = new A();
    B b = new B();

    System.out.println(a.equals(b) == b.equals(a));
  }
} 

Unsurprisingly, the output is false, thus breaking symmetry.

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I disagree. Can you construct an example where the symmetry can be broken if the superclass doesn't implement equals? I'm fairly sure the warning message is invalid. Every example of broken symmetry I've seen has always required the super class to define equals. –  Duncan Apr 27 '13 at 7:11
    
@DuncanJones - see above edit. Is that what you mean? –  Daniel Earwicker Apr 29 '13 at 14:28
    
Well... not really. Why would an equals method in the B class cast the object to A? Don't get me wrong - it's quite possible to produce an example that breaks symmetry, but every example I've seen has (deliberate) major faults. –  Duncan Apr 29 '13 at 14:35
    
(FYI - see this related question: stackoverflow.com/questions/16236708/…) –  Duncan Apr 29 '13 at 14:36
    
@DuncanJones - just to make sure I'm not going crazy, do you still believe Every example of broken symmetry I've seen has always required the super class to define equals? And re: Why would an equals method in the B class cast the object to A - because the newbie coder wants to be able to test equality between B and A and didn't think it through very carefully, perhaps? This is why helpful tools tell you what you did wrong... –  Daniel Earwicker Apr 30 '13 at 8:59

Have you tried super class override the equals ... and then auto generate subclass override implementation...

I am sure it will be differnt. it will have call to super.equals()

in current auto generated implementation it is only checking values in child class..

Consider below scenario and you will understand why warning.

abstract Class A{
 private int a;
public void setA(int a){
this.a=a;
}
}

Class B extends A{
 private int x;
public void setX(int x){
this.x=x;
}

@Override
public boolean equals(Object obj) { // This does not call Super.equals
    if (this == obj)
        return true;
    if (obj == null)
        return false;
    if (getClass() != obj.getClass())
        return false;
    B other = (B) obj;
    if (x != other.x)
        return false;
    return true;
}

}

and in main Method try

B b1= new B();
b1.setA(10);
b1.setX(20);


B b2= new B();
b2.setA(20);
b2.setX(20);

if(b1.equals(b2)){
 System.out.println("Warning was Right");
}
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