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Sorry about the strange title. I really have no idea how to express it any better...

I get an error on the following snippet. I use the class Dummy everywhere. Doesn't the compiler understand the constraint I've added on DummyImplBase? Is this a compiler bug as it works if I use Dummy directly instead of setting it as a constraint?

Error 1 'ConsoleApplication53.DummyImplBase' does not implement interface member 'ConsoleApplication53.IRequired.RequiredMethod()'. 'ConsoleApplication53.RequiredBase.RequiredMethod()' cannot implement 'ConsoleApplication53.IRequired.RequiredMethod()' because it does not have the matching return type of 'ConsoleApplication53.Dummy'. C:\Documents and Settings\simen\My Documents\Visual Studio 2008\Projects\ConsoleApplication53\ConsoleApplication53\Program.cs 37 27 ConsoleApplication53

public class Dummy
{
}

public interface IRequired<T>
{
    T RequiredMethod();
}

public interface IDummyRequired : IRequired<Dummy>
{
    void OtherMethod();
}

public class RequiredBase<T> : IRequired<T>
{
    public T RequiredMethod()
    {
        return default(T);
    }
}

public abstract class DummyImplBase<T> : RequiredBase<T>, IDummyRequired
    where T: Dummy
{
    public void OtherMethod()
    {
    }
}
share|improve this question
up vote 1 down vote accepted

You could add this to DummyImplBase:

   public Dummy RequiredMethod() { return base.RequiredMethod(); }

EDIT: Or, if you're using C# 4.0, you could change definition of IRequired like so:

public interface IRequired<out T>

then remove IDummyRequired and you would still be able to assign derived classes to IRequired<Dummy> (but not to IDummyRequired).

2nd EDIT: Your original code did not compile, because T could be Dummy or a class derived from Dummy. And the implemented Method

public DummyDerived RequiredMethod() 

has not the same as signature as

public Dummy RequiredMethod()

which was declared in IDummyDerived.

share|improve this answer
    
This seems more like a tedious hack by hiding the original methods, and still.. This doesn't give me the advantage of generics. Then I have to do this in the derived classes as well to give the same result. – simendsjo Jun 15 '10 at 10:11
    
see my edit, if using C# 4.0 is an option. – Henrik Jun 15 '10 at 10:37
    
Using 3.5 still – simendsjo Jun 15 '10 at 10:44
    
2nd Edit: Ah, of course. Didn't really think of that as DummyDerived could be used as Dummy, but it all makes sense. Thanks – simendsjo Jun 15 '10 at 11:48

I you change the DummyImplBase to:

public abstract class DummyImplBase<T> : RequiredBase<Dummy>, IDummyRequired
        where T : Dummy
{
    public void OtherMethod()
    {
    }
}
share|improve this answer
    
But if I make RequiredMethod virtual and tries to override it using either T or Dummy, this solution doesn't work. – simendsjo Jun 15 '10 at 10:08

If I make IDummyRequired generic too it works, so I guess I'll have to change some of my design to make this possible. I'm still hoping to find out why my solution doesn't work though.

public class Dummy
{
}

public interface IRequired<T>
{
    T RequiredMethod();
}

public interface IDummyRequired<T> : IRequired<T>
    where T : Dummy
{
    void OtherMethod();
}

public class RequiredBase<T> : IRequired<T>
{
    public T RequiredMethod()
    {
        return default(T);
    }
}

public abstract class DummyImplBase<T> : RequiredBase<T>, IDummyRequired<T>
    where T: Dummy
{
    public void OtherMethod()
    {
    }
}
share|improve this answer
    
see my 2nd edit as to why your original code didn't compile. – Henrik Jun 15 '10 at 11:28

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