Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Let's say I have the following interface and implementing class:

interface Foo<FooType extends Foo<FooType>> {
    FooType copy();
}

class Bar implements Foo<Bar> {
    public Bar copy() {
        return new Bar();
    }       
}

If I try to do this:

public <FooType extends Foo<FooType>> FooType getFoo() {
    return new Bar();
}

I get the compile error "Type mismatch: cannot convert from Bar to FooType". Why?

I can "fix" this by rewriting the function like this:

@SuppressWarnings("unchecked")
public <FooType extends Foo<FooType>> FooType getFoo() {
    return (FooType) new Bar();
}

But let's say I have a function like this:

public <FooType extends Foo<FooType>> void printFoo(FooType foo) {
    System.out.println(foo.toString());
}

If I try to do this:

printFoo(getFoo());

I get the following compile error:

Bound mismatch: The generic method printFoo(FooType) is not applicable 
for the arguments (Foo<Foo<FooType>>). The inferred type Foo<Foo<FooType>> 
is not a valid substitute for the bounded parameter <FooType extends Foo<FooType>>

WAT? The return type of getFoo() is literally identical to the argument type of printFoo()!

Are these bugs or am I missing something?

share|improve this question
    
In case someone doesn't know what WAT is: destroyallsoftware.com/talks/wat :) –  Markus A. Nov 29 '12 at 19:38
    
Is the compiler error on doGetFoo because Bar is a non generic and FooType is a generic parameter? –  A B Nov 29 '12 at 19:42
2  
You should rewrite to use a single-letter name for the generic type. It is hard to read code written against this convention. –  Marko Topolnik Nov 29 '12 at 19:48

3 Answers 3

The problem is that FooType could be anything not just Bar. You can return an instance of FooType.

e.g. if you have class NotBar implements Foo<NotBar> { then

 obj.<NotBar>getFoo();

Now the actual argument for FooType is NotBar.

share|improve this answer
    
Right, but shouldn't it pick what it is? Isn't that the point of generic functions? –  Markus A. Nov 29 '12 at 19:46
1  
Ahhhh! Gotcha!!! The type of FooType is determined by the context in which I USE the function, not by what I return! Makes sense... –  Markus A. Nov 29 '12 at 19:48
    
That's correct. :) –  Bhesh Gurung Nov 29 '12 at 19:49
    
But what's the problem with the invocation printFoo(getFoo())? Is it that it has no true way to determine the generic type to use and therefore comes up with something random? –  Markus A. Nov 29 '12 at 19:52
    
If you tried printFoo(this.<Bar>getFoo()) I would probably work as you have locked downt the type coming out of getFoo. –  John B Nov 29 '12 at 19:57

The problem is this, with the method that you declare:

public <FooType extends Foo<FooType>> FooType doGetFoo() 

This is a generic method that states that I should get back the type of the generic that I specify. For example, if I have a call Bat that extends Foo<Bat> and I call instance.<Bat>doGetFoo() it should return an instance of Bat instead it is hard-coded to return an instance of Bar with is not necessarily an instance of the class specified in the generic. If you remove the generic as below you should be fine:

public Foo<?> doGetFoo(){
    return new Bar();
}
share|improve this answer
up vote 0 down vote accepted

Got it! Thanks to meriton who answered this version of the question:

How to replace run-time instanceof check with compile-time generics validation

I need to baby-step the compiler through the printFoo(getFoo())-part by doing this:

public <FooType extends Foo<FooType>> void doPrint() {
    FooType foo = getFoo();
    printFoo(foo);
}

and instead call doPrint() then.

Then everything works fine.

So, I guess even though the "Why?" in the middle may have been my lack of understanding (thanks to Bhesh for clearing up that part), the "WAT?" at the end was justified since this really should just work... For example, it's not OK, for some reason, to inline the variable definition for "foo" in the code above...

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.