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Consider the following code sample, where Concrete derives from Base:

class Base{}
class Concrete : Base {}

static void Foo<T>() where T : Base
{
    if (typeof(Concrete).IsAssignableFrom(typeof(T)))
    {
        var x = new Bar<T>(); // compile error on this line
    }
}

class Bar<T> where T : Concrete
{
}

On the line where I am having the compile error, I have already checked that the generic argument is assignable to the Concrete type. So in theory I believe there should be a way to create an instance of the Bar class.

Is there any way I can remove the compile error? I cannot think of a way to cast the argument.


Full text of compile error:

Error 14 The type 'T' cannot be used as type parameter 'T' in the generic type or method 'Bar'. There is no implicit reference conversion from 'T' to 'Concrete'.

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1  
That compiles for me... is that the actual example? are there perhaps parameters in your real code? –  Marc Gravell Nov 6 '12 at 14:43
1  
Your code doesn't match the error message. Surely you wrote Bar<T>(); –  Hans Passant Nov 6 '12 at 14:44
    
Is there a reason that Foo doesn't have where T : Concrete? –  Servy Nov 6 '12 at 14:45
    
while editing, you might also want to clarify the relationship between Base and Concrete –  Marc Gravell Nov 6 '12 at 14:47
1  
@ZaidMasud thanks; with that edit: there is no regular way to do that. You can hack it with reflection (MakeGenericMethod etc), but that is not a good answer. If you can remove the constraint from Bar<T> and do some casting (via object) inside Bar<T>, that might work. –  Marc Gravell Nov 6 '12 at 14:58

1 Answer 1

up vote 4 down vote accepted

The compiler has no way to know that T, which is currently constraint to Base is actually Concrete, and that even if you test it before.

So:

Type type = typeof(Bar<>);
Type generic = type.MakeGenericType(typeof(T));
var x = Activator.CreateInstance(generic); 

Don't let it the chance to do it.

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