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I have a list with upper bound generics.

 List<? extends Number> l = new ArrayList<>();
 l.add(new Integer(3));  //ERROR
 l.add(new Double(3.3)); // ERROR

I don't understand the problem, because Integer and Double extend Number.

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Which java version are you using? –  Nappa The Saiyan Jan 27 at 14:17
1  
@Mason It must be Java 7+ because of the <>. –  Radiodef Jan 27 at 14:17
    
possible duplicate of java generic and wild card –  assylias Jan 27 at 14:18
    
@Radiodef Never know could have had an error with his initialization of the List. –  Nappa The Saiyan Jan 27 at 14:19
    
Just make it List<Number> instead of the generic wildcard. You can't know how the type will get filled in so it will throw an error. –  Jeroen Vannevel Jan 27 at 14:20

4 Answers 4

List<? extends Number> does not mean "a list that can hold all objects of subclasses of Number", it means "a list parameterized to one concrete class that extends Number". It's not the contents of the list itself you are defining, it's what the parameterized type of the actual list-object assigned to the variable can be (boy, this is harder to explain than it is to understand :) )

So, you can do:

List<? extends Number> l = new ArrayList<Integer>();
List<? extends Number> l = new ArrayList<Double>();

If you want a list that is able to hold any object of class Number or its subclasses, just do this:

List<Number> l = new ArrayList<>();

l.add(new Integer(33));
l.add(new Double(33.3d));

(The boxing of the values inserted are uneccessary, but there for the example..)

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Crucially, the wildcard means that the List once had a type but we don't know what it is anymore. –  Radiodef Jan 27 at 14:24
    
"boy, this is harder to explain than it is to understand :)" That's true of most things, I think. –  Anthony Grist Jan 27 at 14:25

Because List<? extends Number> means that your variable l holds a value of type List with concrete (but unknown!) type argument that extends Number.

You can add only null, because l can hold a List<MyClass> for example, where MyClass is your class that extends Number, but nor Integer, nor Double value can be casted to MyClass.

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I will add one more way to add the subtypes of Number to this list. i.e

List<? super Number> l = new ArrayList<>();
 l.add(new Integer(3));  //OK
 l.add(new Double(3.3)); //OK

This is allowed since the list is parameterized to be any unknown supertype of Number class. so, compiler allows the known subtype of Number. i.e Integer and Double types

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Nope I was wrong! Carry on. –  Radiodef Jan 27 at 14:33

Yes in case of

List<? extends Number> 

this is just a reference, may be the actual object will be

List<Integer>

so you should not be allowed to add new Double(5.0) in a list of Integer.

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