0

I try to get foo() from my Main:

<T extends Main> T foo()
{
  return this; // "this" it is a instance of Main
}

And use it

Main m = new Main();
Main m2 = m.foo();

And I've got an error: "Incompatible Types. Required T, found Main" in method foo().
I know I can use this:

<T extends Main> T foo2(T a) {
  return a;
}

And use it:

Main m = new Main();
Main m3 = m.foo2(m);

And it works fine. But I cannot understand, why I cannot use first method? Because this is definitely instance extends of Main.

3 Answers 3

8

If you define <T extends Main> T foo(); in Type Main you cant just return this, because T might be a subtype of Main, which Main of course isn't. So if you have MainSubType m = new Main().foo(); the Compiler wants to induce T as MainSubType but in face it is only of Type Main, so you have to parse it the hard way, which i cannot recommend here but that is how you go <T extends Main> T foo(){return (T) this}. If you do it like that you should indeed be able to compile the rest.

If it doesn't work with the (T)-cast in foo(), you will need to provide more context/code.

2

As user2504380 already pointed out: If this was possible you could silently "upcast" any Main to any subclass of Main.

However, you probably do not need this type parameter at all (at least, I can not imagine a case where it could make sense). If your class looks like this:

class Main {
    Main getIt() {
        return this;
    }
}

then you can create a subclass of Main, and, thanks to the covariance in Java, override the method to return the corresponding subtype of Main

class SubMain {

    // Overriding with a more specific return type:
    @Override
    SubMain getIt() {
        return this;
    }
}

This means that the return type of the method is determined by the type of the reference that you are calling the method on:

Main main = new Main();
SubMain subMain = new SubMain();

Main m0 = main.getIt();
Main m1 = subMain.getIt();

// This does not work
//SubMain s0 = main.getIt();

// But this works: The instance IS a SubMain, and returns a SubMain:
SubMain s1 = subMain.getIt();

In the more complex scenarios that involve self-referential generic types, you might employ the getThis trick.

1
  • Thank you for your answer, but I trying to understand java covariance.
    – Alexmelyon
    Oct 8, 2014 at 12:52
0

As others already pointed out, in the case of

 <T extends Main> 

the compiler cannot certainly determine the type of T. It can be Main or any sub class of Main. Because of this uncertainity the compiler won't allow to return this. If you cast the retrun type with T like

(T) this 

or if there is a method parameter of type T, there is no uncertainity.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

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