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my code is:

public class Box
{
  public static void main(String[] args)
  {
     Integer z = new Integer(43);
     z++;

     Integer h = new Integer(44);

     System.out.println("z == h -> " + (h == z ));
  }
}

Output:-

z == h -> false

why the output is false when the values of both the objects is equal?

Is there any other way in which we can make the objects equal?

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7 Answers 7

up vote 1 down vote accepted

You are trying to compare two different object and not their values. z and h points to two different Integer object which hold same value.

z == h 

Will check if two objects are equal. So it will return false.

If you want to compare values stored by Integer object use equals method.


Integer z = new Integer(43);   // Object1  is created with value as 43.
z++;                           // Now object1 holds 44.

Integer h = new Integer(44); // Object2 is created with value as 44.

So at the end we have two different Integer object ie object1 and object2 with value as 44. Now

z = h

This will check if objects pointed by z and h is same. ie object1 == object2 which is false. If you do

Integer z = new Integer(43);   // Object1  is created with value as 43.
z++;                           // Now object1 holds 44. Z pointing to Object1

Integer h = z;                 // Now h is pointing to same object as z.

Now

z == h  

will return true.

This might help http://www.programmerinterview.com/index.php/java-questions/java-whats-the-difference-between-equals-and/

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i got to know that == checks for the equality of the references of the object to be equal. So can u tell me how can i make the references equal in this case? –  Himanshu Aggarwal Feb 9 '13 at 8:11
    
@HimanshuAggarwal: Reference will be equal if both reference variable are pointing to same object. You want to compare values or reference? –  xyz Feb 9 '13 at 8:14
1  
@HimanshuAggarwal: I have updated my answer to make it more clear. –  xyz Feb 9 '13 at 8:21
    
yes! this is the answer i was looking for. thanks @ajinkya. :-) –  Himanshu Aggarwal Feb 9 '13 at 8:30
    
@HimanshuAggarwal: Glad I could help! –  xyz Feb 9 '13 at 8:31

No. Use h.equals(z) instead of h == z to get the equality behavior you expect.

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h == z would work only if you assign the value via auto-boxing (i.e Integer a = 43) and the value is in between -128 and 127 (cached values), i.e:

 Integer a = 44;
 Integer b = 44;

 System.out.println("a == b -> " + (a == b));

OUTPUT:

a == b -> true

If the value is out of the range [-128, 127], then it returns false

 Integer a = 1000;
 Integer b = 1000;

 System.out.println("a == b -> " + (a == b));

OUTPUT:

a == b -> false

However, the right way to compare two objects is to use Integer.equals() method.

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Integer is Object not primitive (int) And Object equality compare with equals method.

When you do z == h it will not unbox into int value unless it checks both Integer reference(z & h) are referring same reference or not.

As it is derived in documentation -

The result is true if and only if the argument is not null and is an Integer object that contains the same int value as this object.

System.out.println("z == h -> " + h.equals( z));

It will print true.

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1  
@downvoter - Care for comment else it is unethical. –  Subhrajyoti Majumder Feb 9 '13 at 8:30

Integer is an object, not a primitive. If z & h were primitives, == would work just fine. When dealing with objects, the == operator doesn't check for equality; it checks if the two references point to the same object.

As such, use z.equals(h); or h.equals(z); These should return true.

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so in this case how we can make the references to point the same object? –  Himanshu Aggarwal Feb 9 '13 at 8:02
1  
You can make them point to the same object using h = z; –  Cody Poll Feb 10 '13 at 22:08

Read this: http://docs.oracle.com/javase/1.5.0/docs/api/java/lang/Integer.html

Integer is Object you compare address/references/pointers of objects not values.

Integer a = Integer(1);
Integer b = Integer(1);

a == b; // false
a.compareTo(b); // true
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check to make sure you can use z++ on the Integer object.

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Yeah it can be done. That is called unboxing Integer into an int. –  Rohit Jain Feb 9 '13 at 7:45
    
yes. we can increment the object of this wrapper class –  Himanshu Aggarwal Feb 9 '13 at 7:46
    
alright, it's been a while since i've used Java, I know it can be done with an int. –  ecsit39 Feb 9 '13 at 8:05

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