21

I've just saw an unfamiliar syntax while looking for GroupBy return type:

public interface IGrouping<out TKey, out TElement> : IEnumerable<TElement>

MSDN Source

I know what does out mean in methods, but not in a generics interface.

What does out mean in a generic type?

1

4 Answers 4

18

It denotes a covariant parameter. See also the description on MSDN. Essentially it says, that IGrouping<Aderived, Bderived> can be regarded as IGrouping<Abase, Bbase>, hence you can

IGrouping<Aderived, Bderived> gr = MakeGrouping(...);
IGrouping<Abase, Bbase> grBase = gr;

if Aderived is an interface or a type derived from Abase. This is a feature that comes in handy when you want to call a method that requires a parameter of type IGrouping<Abase, Bbase>, but you only got an object of type IGrouping<Aderived, Bderived>. In this case, both types can be considered equivalent due to the covariance of their type parameters.

8

It is one of the two generic modifiers introduces in C# 4.0 (Visual Studio 2010).

It signifies that the generic parameter it is declared on is covariant.

The in modifier signifies the generic parameter it is declared on is contravariant.

See out (Generic Modifier) and in (Generic Modifier) on MSDN.

3
  • I know the terms contravariance and covariance, but the MSDN examples aren't describing the in and out modifiers for Generics very clear in my opinion. Can you give some examples which are easier to understand?
    – Matt
    Dec 14, 2012 at 9:47
  • 1
    This is nothing but copy/paste from MSDN. Frank's answer should have been accepted, not this. Feb 21, 2013 at 20:06
  • @SergeyAkopov - You are certainly entitled to your opinion, but accepting or not is entirely something that the question asker decides.
    – Oded
    Feb 21, 2013 at 20:07
5

out just means that the type is only used for output e.g.

public interface Foo<out T>
{
   T Bar()
}

There also is a modifier in that means that the type is only used for input e.g.

public interface Foo<in T>
{
    int Bar(T x)
}

These are used because Interfaces with in are covariant in T and Interfaces with out are contravariant in T.

2
  • I assume you meant public interface Foo<in T> (instead of out) in your second example, am I right?
    – Matt
    Dec 14, 2012 at 9:43
  • 2
    @ralzarek you have it backwards : out is covariant and in is contravariant
    – BaltoStar
    Jul 17, 2017 at 18:14
4

out keyword in this context would indicate the corresponding type parameter to be covariant simply speaking - covariance enables you to use a more derived type than that specified by the generic parameter.

BTW, see this ten part series from Eric Lippert to understand more about covariance and contra-variance: http://blogs.msdn.com/b/ericlippert/archive/2007/10/16/covariance-and-contravariance-in-c-part-one.aspx

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