I'm wondering if there's a better way to do this. What I want is to have a concrete method in an abstract class return the concrete instance that extends the abstract class.

Here's what I'm doing now:

abstract class ParentClass<T extends ParentClass> extends RelativeLayout {
    ...
    public T aMethod(){
        return (T)this;
    }
}

and

class ChildClass1 extends ParentClass<ChildClass1>{
...
}

I don't think I should have to cast this to T since this always is an instance of T.

  • 4
    This will break if I decide to do this: class ChildClass2 extends ParentClass<ChildClass1>. Now, I'm not entirely clear on what you want to achieve or why you want to achieve it. If you want to update your question accordingly I might be able to provide an answer. – Joe C Nov 29 '16 at 23:32
  • 2
    "It should already know that 'this' is an instance of T" But it's not in the case JoeC mentions. – Andy Turner Nov 29 '16 at 23:37
  • 1
    "It should already know that 'this' is an instance of T" no. Only description for T is that <T extends ParentClass>, but that doesn't prevent ParentClass from setting other T than its own type. Take a look at example from @JoeC comment. You can have class ChildClass2 extends ParentClass<ChildClass1> so there T is set to be ChildClass1 while this will be instance of ChildClass2. – Pshemo Nov 29 '16 at 23:37
  • 2
    There's no clean way to do this in Java. If you want to avoid the cast, you can make aMethod abstract and override it in the subclass to return this. – shmosel Nov 29 '16 at 23:39
  • 1
    @der_Fidelis No, because this might be an instance of ChildClass2 extends ParentClass<ChildClass1>, like @JoeC said. – shmosel Nov 29 '16 at 23:40
up vote 1 down vote accepted

The problem is that there is no way to reference the type of "this very class". This is why you have to use constructs like abstract class Base<T extends Base<T>>. But as many mentioned in comments, nothing prohibits you from defining Subclass1 extends <Subclass2>. There is just now syntactic way to guarantee that T is "this very class".

You can, however, enforce this guarantee in the runtime. You can use something like TypeTools or other methods to extract used generic type and the make sure that current instance has this type. This would probably result in something like:

public abstract class Base<T extends Base<T>> {

    protected Base() {
        final Class<?> t = (Class<?>) ((ParameterizedType) getClass().getGenericSuperclass())
                .getActualTypeArguments()[0];
        if (!t.isInstance(this)) {
            throw new IllegalArgumentException();
        }
    }

    public T getInstance() {
        @SuppressWarnings("unchecked")
        T thisIsT = (T) this;
        return thisIsT;
    }
}

This class can be instantiated:

public class Extension1 extends Base<Extension1> {}

But this one not:

public class Extension2 extends Base<Extension1> {}

The Base constructor guarantees that this is instance of T therefore the cast of this to T is safe.

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