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It is possible to implement something like this? I have a problem with this code in the declaration of class SomeClass.

The exception that I'm receiving is:

'WindowsFormsApplication1.SomeClass' does not implement interface member 'WindowsFormsApplication1.IB.SomeGetter'. 'WindowsFormsApplication1.SomeClass.SomeGetter' cannot implement 'WindowsFormsApplication1.IB.SomeGetter' because it does not have the matching return type of 'WindowsFormsApplication1.MyClass'.

My code:

public interface IA
{ }

public interface IB
{
    MyClass<IA> SomeGetter { get; }
}

public class A : IA
{ }

public class MyClass<T>
    where T : IA
{ }

public class SomeClass : IB
{
    public MyClass<A> SomeGetter
    {
        get { return new MyClass<A>(); }
    }
}

Any idea how to do it?

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3  
The getter on SomeClass is implementing MyClass<A>, not MyClass<IA> –  KosmicGoat Jul 3 '12 at 11:24
    
You'll need to read up on covariance and contravariance with generics: msdn.microsoft.com/en-us/library/dd799517.aspx –  Frederik Gheysels Jul 3 '12 at 11:25

2 Answers 2

To achieve this you'll need to introduce an interface (MyInterface) to make use of covariance:

public interface IA
{ }

public interface IB
{
    MyInterface<IA> SomeGetter { get; }
}

public class A : IA
{ }

public interface MyInterface<out T>
    where T : IA
{ }

public class MyClass<T> : MyInterface<T> where T : IA
{ }

public class SomeClass : IB
{
    public MyInterface<IA> SomeGetter
    {
        get { return new MyClass<A>(); }
    }
}
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That's right. You have to use MyClass<IA> in the getter. That does the job, but you have to work with the interface and cannot use class A. –  MatthiasG Jul 3 '12 at 11:28

You may want to introduce an interface for MyClass:

public interface IMyClass<out T> where T : IA
{

}

class MyClass<T> : IMyClass<T> where T : IA
{
}

Notice the 'out' keyword in the interface. Then you could write

public class SomeClass : IB
{
    public IMyClass<A> SomeGetter
    {
        get { return new MyClass<A>(); }
    }
}
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