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Java Wrapper classes are supposed to be immutable. This means that once an object is being created, e.g.,

Integer i = new Integer(5);

its value cannot be changed. However, doing

i = 6;

is perfectly valid.

So, what does immutability in this context mean? Does this have to do with auto-boxing/unboxing? If so, is there any way to prevent the compiler from doing it?

Thank you

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5 Answers 5

up vote 19 down vote accepted

i is a reference. Your code change the reference i to point to a different, equally immutable, Integer.

final Integer i = Integer.valueOf(5);

might be more useful.

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Immutable means that the object state cannot be changed. In your case you haven't changed the object new Integer(5), but you have changed the reference i to point to another object. Hope it is clear:)

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The compiler autoboxes primitive values, this means that

Integer value = 6;

will be compiled as

Integer value = Integer.valueOf(6);

Integer.valueOf will return an Integer instance with the given value. In your case i will now reference the Integer(6) instead of the Integer(5), the Integer(5) object itself will not change.

To see this you can do following

Integer i = new Integer(5);//assign new integer to i
Integer b = i;//b refences same integer as i
i = 6;//modify i
System.out.println(i +"!="+b);

This will print 6!=5, if the integer instance had been modified it would print 6!=6 instead.

To clarify this is only meant to show how an assignment to Integer only modifies the reference and does not alter the Integer instance itself. As user @KNU points out it does not prove or show the immutability of Integer, as far as I can tell the immutability is only indirectly given by the lack of modifying methods in its API and the requirement that instances returned by Integer.valueOf have to be cached for a certain range.

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This is quite an interesting blog entry on primitive/object equality: marxsoftware.blogspot.com/2010/08/… –  Richard Fearn Nov 7 '10 at 13:42
    
this example doesn't proves immutability of Integer in any way. "....if the integer instance had been modified it would print 6!=6 instead." OK how about repeating above test on know mutable object AtomicInteger??? it would still print 6!=5 ,throwing water on above argument. –  KNU Oct 2 '14 at 15:30
    
Note: for above suggested test one needs to use i = new AtomicInteger(6); instead of i = 6; –  KNU Oct 2 '14 at 15:32
    
@KNU I added a clarification. –  josefx Oct 3 '14 at 16:05
    
the will be compiled as... thing was really enlightening for me. Until now I never cared to now how it actually works.Great –  KNU Oct 3 '14 at 20:53

The reason i = 6 works is that auto-boxing is intercepting and turning it into i = new Integer(6). Thus as @Peter said, you are now pointing at a new object.

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Almost - it effectively turns it into Integer.valueOf(6). See this for more info: marxsoftware.blogspot.com/2010/08/… –  Richard Fearn Nov 7 '10 at 13:43
    
Oops. My Bad :-) I had not actually bothered to look up exactly what it translated to. –  drekka Nov 7 '10 at 22:54

All wrapper classes in java are immutable. We can't change the value of a wrapper class object once created. Read Why Strings and wrapper classes are immutable in java? for more information.

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