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When I write the following code compiler says that

cannot convert from ArrayList<String> to List<Comparable>

private List<Comparable> get(){
    return new ArrayList<String>();

But when I write return type with wildcard, the code compiles.

private List<? extends Comparable> get() {
    return new ArrayList<String>();

Can somebody explain me why?

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This is a great generics resource: – James B Dec 19 '11 at 14:29

5 Answers 5

up vote 6 down vote accepted

A List<String> is not a List<Comparable>.
After all, you can put an Integer into a List<Comparable>.

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But i can put an Integer into List<? extends Comparable> – narek.gevorgyan Dec 19 '11 at 14:07
@narek.gevorgyan but you get a compilation error if you try. – Peter Lawrey Dec 19 '11 at 14:08
ah, thanks) I think i got it now. Also I will try to read document posted by @binary_runner – narek.gevorgyan Dec 19 '11 at 14:10
@narek.gevorgyan: No, you cannot. In fact, you cannot put anything into a List<? extends Comparable> except null. You can only get Comparable instances from it. – Michael Borgwardt Dec 19 '11 at 14:10

Because a List<Comparable> can have any instance of Comparable added to it, e.g. an Integer. An ArrayList<String>, however, is only allowed to contain String instances. Allowing it to be used as a List<Comparable> would break type safety.

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String is not a Comparable is it something which extends Comparable.


List<String> list1 = new ArrayList<String>();
List<Comparable> list2 = list1; // does not compile.
list2.add(1); // if this program compiled you would have a 1 in the list of String.
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This is how the generics work. I think the best explanation is here : .

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the reason is that the second part is what u actually want: a class (String) that extends Comparable. Since Comparable is an interface you cannot have an Comparable object, just a class that implements it. This is what List<? extends Comparable> tells Java to look for.

Hope it helps a little.


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That is completely false. – SLaks Dec 19 '11 at 14:12

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