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I want the return type param to be super of both a type param and a method param's type param.

This compiles:

import java.util.List;
interface Foo<A> {
    <R, B extends R> List<R> eg1(List<B> unit);
    <R> List<R> eg2(List<? extends R> unit);
}

But it doesn't enforce that R must be a super of A also. How do I do that?

In effect, I want to do something like what is expressed in these:

<B, R super A & B> List<R> func(List<B> unit);
<B> List<? super A & B> func(List<B> unit);

But those don't compile, of course.

There are two purposes to this:

  1. I want to be able to assign the result to any super class of both A and B.
  2. In the implementation of this method, I need a result type that can include both A's and B's. So the first examples that do compile would not work because they would not allow me to put an A in the result.
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1  
If R is allowed to be any supertype of A, and B is allowed to be any subtype of R, then that's equivalent to just saying B is allowed to be anything, because R can always be Object. What actual task are you trying to accomplish that you think needs these generics? –  Louis Wasserman Mar 20 '13 at 22:19
    
@LouisWasserman I added details to the question to answer the first part of your comment. As for the second... actually, I should have worked on that first. Implementing that interface leads to the problem and I think that answers my question. –  taotree Mar 20 '13 at 23:08
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2 Answers

I think you'll have to name the type parameter at the class level:

import java.util.List;
interface Foo<Base, A extends Base> {
    <B extends Base> List<Base> eg1(List<B> unit);
    <R> List<R> eg2(List<? extends R> unit);
}
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+1 a good compromise... –  dcernahoschi Mar 20 '13 at 22:55
    
Thanks, but that's not interesting for what I'm trying to do. You have to specify the second type parameter. –  taotree Mar 20 '13 at 23:05
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up vote 0 down vote accepted

Thanks to @LouisWasserman 's comment, I started thinking of the implementation which I should have done so first. Somewhere something has to specify the type to construct to return. Either hard-coded in the method implementation, specified as a type param, param type param, etc. And wherever that specification is, that's where one can define the generics correctly for this interface method.

In other words, what I was trying to do makes no sense because you cannot construct the return type.

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You should accept your own answer as the solution to your question. –  Ted Hopp Mar 21 '13 at 0:42
    
@TedHopp I have to wait two days to do so. –  taotree Mar 21 '13 at 4:14
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