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I have the following code:

Object obj = 3;
//obj.equals(3); // so is this true?

Does obj equal to 3?

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3  
What happened when you tried it? –  Mark Peters Sep 28 '10 at 17:53
2  
obj.equals(3) was true, but I'd like to know if it was only "luck" or it really equals to 3 –  user Sep 28 '10 at 17:56
2  
You're thinking along the right lines. Depending on luck sucks. –  Tony Ennis Sep 28 '10 at 18:10
    
For a variation try 3 and 3L. –  starblue Sep 28 '10 at 19:28

5 Answers 5

up vote 5 down vote accepted

What's at play here is autoboxing.

When you use a primitive literal when a reference is expected, the primitive is autoboxed to the wrapper type (in this case from int to Integer).

Your code is the equivalent of this:

Object obj = Integer.valueOf(3);
if ( obj.equals(Integer.valueOf(3)) ) {
    //...

I'll leave it to you to decide whether that's true or not.

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Yes.

Here is what's happening behind the scenes.

Object obj = Integer.valueOf(3);
obj.equals(Integer.valueOf(3));

So, of course they are equal.

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This is also interesting:

Object t = 3;

t.equals( 3 );  // true
3 == o;         // true 

But

Object h = 128; 

h.equals( 128 ); // true 
128 == h;        // false

.equals will work, becase the value will be compared. == Will work, using the references, but only from -128 to 127, because the autoboxing mechanism, uses an internal pool to hold "most commonly used" references.

Strange enough: o == 3 will fail at compile time.

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The first statement will set obj to be a automatically boxed Integer (the same as Integer.valueOf(3))

Hence the second statement will return true.

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You need to do Type-casting here to achieve the task


         Object obj = 3;
         if(obj.equals(Integer.valueOf(3)))
         {
        // to do something....  
         } 

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