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I have the following code :

List<? super Integer> numbers = new ArrayList<Number>();
numbers.add(new Integer(10));
Number object = numbers.get(0);  //this doesn't compile??

Object object = numbers.get(0);  //this does compile

Then if I do :

numbers.add(new Object()); //doesn't compile in contradiction to above statement

What is the reason for this?

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4 Answers 4

up vote 9 down vote accepted

Number object doesn't work because the compiler doesn't know that numbers is a list of Numbers - it only knows that it's a list of something that's a superclass of Integer. So it might be a list of Objects for example, in which case storing the result of get in a Number variable wouldn't work. Thus the compiler doesn't allow it.

Object object is allowed because storing the result of get in an Object variable always works because you can store anything in an Object variable.

The reason that numbers.add( new Object() ) doesn't work is that you're only allowed to add Objects to List<Object>s, but numbers may very well be a List<Integer> or a List<Number> (and in fact it is the latter), so that's not allowed.

Basically you have to think of it like this: numbers may be a list of Integers, a list of Numbers or a list of Objects, so you're only allowed to perform those actions that would work on either one of those three.

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List<? super Integer> allows numbers to be a list of Objects, and not just a list of Numbers or a list of Integers:

List<? super Integer> numbers = new ArrayList<Object>();

Based purely on the compile-time type of numbers, the following can't be guaranteed to be typesafe and is therefore rejected:

Number object = numbers.get(0);  //this doesn't compile
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By declaring List<? super Integer>, you are saying that it can accept any object that is a super class of Integer which includes Number and Object as well . So you can add instances of Number and Object in that list so while retrieving from the list the most generic type i.e. Object is considered .

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I think you are looking to load the List with ANY SUPER Class of Integer. Object is the only class that Super of Integer.

Number is an Object hence it is legal to write new ArrayList<Number>();

But when you try to get from numbersList, It could only be an Object. Because Object is the only Super class of Integer.

Let me know if you have any doubt, or if you think I need to correct my understanding.

Regards, Venod

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2  
That's wrong, Number is a superclass of Integer. –  sepp2k Apr 12 '13 at 16:02
    
I think he didn't consider Number as it an abstract class ;) –  NINCOMPOOP Apr 12 '13 at 16:06
    
@noob you are too kind. –  cowls Apr 12 '13 at 16:07
    
I am wrong, the error is because the Number is Abstract. –  Venod Apr 12 '13 at 16:10
    
@Venod The error is not because Number is abstract. The error is because of the reasons that the other answers explained. –  sepp2k Apr 12 '13 at 16:12

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