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(This is with Java 7)

I was trying to put some JSON string-generating method in my base class rather than having near-identical code in all the subclasses. The first, naive thing I tried was:

public abstract class Base
{
    [rest of class...]

    final public <T extends Base> String toJsonString() throws IOException {
        JacksonRepresentation<T> rep =
             new JacksonRepresentation<>(MediaType.APPLICATION_JSON, this);
        return rep.getText();
    }    
}

But that wouldn't compile, giving the error:

error: incompatible types
required: JacksonRepresentation<T>
found:    JacksonRepresentation<Base>
where T is a type-variable:
T extends Base declared in method <T>toJsonString()

So I tried this:

public abstract class Base
{
    [rest of class...]

    final public String toJsonString() throws IOException {
        return jsonStringHelper(this);
    }

    private static <T extends Base> String jsonStringHelper(T object)
        throws IOException {
        JacksonRepresentation<T> rep =
             new JacksonRepresentation<>(MediaType.APPLICATION_JSON, object);
        return rep.getText();
    }
}

and that worked fine. Why is that? Why can't/doesn't the compiler realize that the type of this is a type that satisfied T extends Base and do the necessary resolution?

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3  
But this could be a different derived type from T. –  Tom Hawtin - tackline Jul 16 '12 at 17:40

1 Answer 1

up vote 6 down vote accepted

Because you can have Class1 and Class2 that both extend base, and someone could do this:

Class1 class1 = new Class1();

String result = class1.<Class2>jsonStringHelper();

So while it is guaranteed that 'this' is a subclass of Base, there is no guarantee that 'this' is an instance of T.

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D'oh! Yeah -- that makes the issue very obvious. Thanks for the clear explanation. –  QuantumMechanic Jul 16 '12 at 17:43

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