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What is wrong with this?

interface IRepository<out T> where T : IBusinessEntity
{
    IQueryable<T> GetAll();
    void Save(T t);
    void Delete(T t);
}

It says:

Invalid variance: The type parameter 'T' must be contravariantly valid on 'MyNamespace.IRepository.Delete(T)'. 'T' is covariant.

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3 Answers 3

up vote 30 down vote accepted

You can use an out type parameter only contravariantly, i.e., in the return type. Therefore, IQueryable<T> GetAll() is correct, but void Delete(T t) is not.

Since T is used both co- and contravariantly in your class, you cannot use out here (nor in).

Here's a bit of background: Covariance and Contravariance (Wikipedia).

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7  
Note that it can be in the parameters, but then only with something like an Action<T> which reverses the direction again. –  Jon Skeet Feb 18 '11 at 13:21

Consider what would happen if the compiler allowed that:

interface IR<out T>
{
    void D(T t);
}

class C : IR<Mammal>
{
    public void D(Mammal m)
    {
        m.GrowHair();
    }
}
...
IR<Animal> x = new C(); 
// legal because T is covariant and Mammal is convertible to Animal
x.D(new Fish()); // legal because IR<Animal>.D takes an Animal

And you just tried to grow hair on a fish.

The "out" means "T is only used in output positions". You are using it in an input position.

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The following two methods are wrong:

void Save(T t);
void Delete(T t);

You can't have T as method argument. Only as return type if you want it to be covariant (out T) in your generic definition.

Or if you want contravariance then you could use the generic parameter only as method argument and not return type:

interface IRepository<in T> where T : IBusinessEntity
{
    void Save(T t);
    void Delete(T t);
}
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Complete and clean answer. Thanks –  Javad_Amiry Jan 28 '12 at 17:42

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