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Hi I read this question on Stack overflow, and tried to do an example.

I had the below code:

public static void main(String[] args){
     int i = 5;
     Integer I = new Integer(5);

     increasePrimitive(i);
     increaseObject(I);

     System.out.println(i); //Prints 5 - correct
     System.out.println(I); //Still prints 5
     System.out.println(increaseObject2(I)); //Still prints 5

}

public static void increasePrimitive(int n){
     n++;
}

public static void increaseObject(Integer n){
     n++;
}

public static int increaseObject2(Integer n){
         return n++; 
}

Does the increaseObject print 5 because the value of reference is changing inside that function? Am I right? I am confused why the increasedObject2 prints 5 and not 6.

Can anyone please explain?

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marked as duplicate by EJP, pad, gnat, TGMCians, Patricia Shanahan Mar 2 at 16:33

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did you mean to use increaseObject(I);? (note the I instead of i) –  lccarrasco Oct 3 '12 at 3:35
1  
Integer is immutable in Java. Similar topic: stackoverflow.com/questions/5560176/java-is-integer-immutable –  Alex Oct 3 '12 at 3:37
    
@Alexey, then what is happening with the increaseObject method in this case, considering that Integer is immutable? –  rgamber Oct 3 '12 at 3:41
    
You can change this way: n = n+1. Here is exactly the same question: stackoverflow.com/questions/2208943/… –  Alex Oct 3 '12 at 3:45
    
Thank you. That helps. –  rgamber Oct 3 '12 at 3:56
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2 Answers 2

up vote 1 down vote accepted

The problem is return n++; where n is returned and then only incremented. It works as expected if you change it to return ++n; or return n+1;

But still what you are trying to test does not work with Integer because it is immutable. You should try with something like -

class MyInteger {
     public int value; //this is just for testing, usually it should be private

     public MyInteger(int value) {
         this.value = value;
     }
}

which is mutable.

Then you can pass around the reference to an instance of that class and mutate it (change the value of value in that instance) from the invoked method.

Change the method -

public static void increaseObject(MyInteger n){
     n.value++;
}

and call it -

MyInteger i = new MyInteger(5);    
increaseObject(i);
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Ahh..sorry I completely overlooked the postfix ++ part. Sorry that was a stupid mistake. –  rgamber Oct 3 '12 at 3:37
    
@rgamber: No problem, it happens. :) –  Bhesh Gurung Oct 3 '12 at 4:04
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In increasedObject2() function,

return n++;

It is postfix. So after n = 5 has been return, it increases n value, i.e n=6.

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