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Is there any magic hanging around anywhere that could mean that

(object0 == object1) != (object0.equals(object1))

where object0 and object1 are both of a certain type which hasn't overridden Object.equals()?

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9 Answers 9

up vote 16 down vote accepted

No. That's exactly the definition of Object.equals().

...this method returns true if and only if x and y refer to the same object (x == y has the value true) ...

public boolean equals( Object o ) { 
   return this == o;
}
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Yes, if by "The type of object0 doesn't override Object.equals()" you mean the specific type and not a superclass.

If object0 and object1 are of type B, B extends A, and A overrides equals(Object obj) but B doesn't, then it is possible that B doesn't override equals(Object obj) but (object0 == object1) != (object0.equals(object1)).

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Well, if object0 == null and object1 == null, the first will deliver true, and the second a NullPointerException ;-) Apart from that, there should be no observeable difference.

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Although the objects don't override equals() themselves, it is possible that one of superclasses of the object overrides the equals() method...

If you are using eclipse: open the object.java file and press control-o twice. Type 'equals' and check if you only see one 'equals' method: the equals method of Object

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The Object.java src defines its equals method as;

 return (this == obj)

so no :-)

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Yes, null == null is true, but null.equals(null) is not defined.

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2  
@egaga. It IS defined ... to throw a NullPointerException! –  Stephen C Sep 25 '09 at 7:37

No, if equals() is not overridden, it returns true if the objects are the same identical objects in memory.

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No. The actual class of object0 (not necessarily the declared type of the variable) must have overridden equals(). Try printing out object0.getClass().

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Here is the source code for Object.equals:

public boolean equals(Object obj) {
  151           return (this == obj);
  152       }
  153

So, No.

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