4

Consider a class Foo which wholly implements IFoo. Concurrently, consider a task Task<IFoo>.

Why is it that when the following is called, a compilation error is thrown;

Task<IFoo> task = Task.Factory.StartNew(() => new Foo());

The compiler states that it cannot convert from source type Task<Foo> to Task<IFoo>. While this makes sense because they are essentially two differing types, would it not fall under the same premise as IList<IFoo> list = new List<IFoo>{new Foo(/* construct */)};, or other similar assignments?

At the moment I am forcing a cast to the interface, but this feels unneccesary.

  • 3
    Your counter-example isn't counter. List<Foo> cannot be assigned to IList<IFoo>, either. – Anthony Pegram May 25 '15 at 1:59
  • Huh, you're right. I guess this falls under the same blanket then. – Daniel Park May 25 '15 at 2:00
  • I usually return concrete from a mixture of Portland Cement ad water. Perhaps you could edit your title to be more descriptive. – Pieter Geerkens May 25 '15 at 3:12
  • Daniel, I edited your title to be a bit more precise, in line with the suggestion from @PieterGeerkens. – Alex May 25 '15 at 6:27
9

That is because this statement Task.Factory.StartNew(() => new Foo()); returns an instance of type Task<Foo>.

And given that the Task<> class is a concrete class, it cannot be covariant, unless it were implementing a covariant interface (i.e. ITask<out T>).

Note that there is a uservoice topic to do just that: "Make Task implement covariant interface ITask".

Also note the following possible explanation on why it is the way is it now, "Lack of Covariance in the Task Class":

Framework guidelines are:

  • If your framework already includes an interface for other reasons, then by all means make it co+contravariant.
  • But don't introduce an interface solely for the purposes of enabling co+contravariance.

The justification is that the advantage of covariance is outweighed by the disadvantage of clutter (i.e. everyone would have to make a decision about whether to use Task<T> or ITask<T> in every single place in their code).

For now you will have to do:

Task<IFoo> task = Task.Factory.StartNew<IFoo>(() => new Foo());
  • Thanks, for this. What I was really after what a why rather than a how, and this hit the nail on the head. – Daniel Park May 25 '15 at 2:19
  • @DanielPark If you think this sufficiently addressed your question, you may want to accept it as the answer, so that your question can be removed from the "unanswered questions" list. – Alex May 25 '15 at 21:48
0

You can use generic version

Task<IFoo> task = Task.Run<IFoo>(() => new Foo());

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