326

What is the simplest way of testing if an object implements a given interface in C#? (Answer to this question in Java)

12 Answers 12

530
if (object is IBlah)

or

IBlah myTest = originalObject as IBlah

if (myTest != null)
  • 84
    +1 The second one is better because you will probably end up needing to cast afterward with the first one thus giving you two casts ("is" and then an explicit cast). With the second approach you only cast once. – Andrew Hare Jan 4 '09 at 6:02
  • 47
    @Andrew: +1; Time again for the link to the classic Double-Casting AntiPattern blog post by Julian M Bucknall. – Jeroen Wiert Pluimers Mar 17 '11 at 12:27
  • 1
    Optimisation probably won't have you cast twice in the first case ? – BuZz Jul 19 '13 at 10:55
  • 1
    @Joreen, that link misses one point if you are working with a structure you can't use "as" because it wont hold a null which is what the "as" tries to return, in that case you have to go through a nullable class like int?, though not an issue if your only working at the interface level as they are always reference types – MikeT Sep 30 '13 at 13:40
  • 34
    Since C# 6.0: if (object is IBlah iblah) { iblah.SomeMethod(); } – Knelis Jun 26 '17 at 9:40
209

Using the is or as operators is the correct way if you know the interface type at compile time and have an instance of the type you are testing. Something that no one else seems to have mentioned is Type.IsAssignableFrom:

if( typeof(IMyInterface).IsAssignableFrom(someOtherType) )
{
}

I think this is much neater than looking through the array returned by GetInterfaces and has the advantage of working for classes as well.

  • I'm trying to determine if a type implements some instantiation of IList. I'm using "typeof(IList<>).IsAssignableFrom(someType)" but that isn't working. – KeyboardDrummer Sep 19 '11 at 12:31
  • 2
    You might be better off asking this in another question. If someType is the type of the list elements you could need typeof(IList<>).MakeGenericType(someType). If someType is the list type you should look at Type.GetGenericArguments and Type.GetGenericTypeDefinition. – Andrew Kennan Sep 20 '11 at 2:39
  • I use this for type checking in a plugin system. It can be used in situations where an instance of the object does not yet exist. But I use both this style and Robert's depending on what I am doing so I up voted both ways. – James Mar 23 '12 at 11:56
  • This is an older comment, but to answer @Steenreem's question, use typeof(IList).IsAssignableFrom(someType), without the <>. – saluce Feb 14 '13 at 16:38
  • This method even works with conversion operators and if TypeConverters are involved – Harald Coppoolse Aug 5 '14 at 7:45
20

For the instance:

if (obj is IMyInterface) {}

For the class:

Check if typeof(MyClass).GetInterfaces() contains the interface.

  • 1
    if (Array.IndexOf(typeof(MyClass).GetInterfaces(), typeof(IMyInterface)) != -1) { ... } – Constantin Jan 4 '09 at 3:07
  • 2
    or: if(typeof(MyClass).GetInterfaces().Contains(typeof(IMyInterface))) {...} – Lance Fisher Jan 4 '09 at 3:12
15

A variation on @AndrewKennan's answer I ended up using recently for types obtained at runtime:

if (serviceType.IsInstanceOfType(service))
{
    // 'service' does implement the 'serviceType' type
}
9

If you want to use the typecasted object after the check:
Since C# 7.0:

if (obj is IMyInterface myObj)

This is the same as

IMyInterface myObj = obj as IMyInterface;
if (myObj != null)

See .NET Docs: Pattern matching with is # Type pattern

4

This Post is a good answer.

public interface IMyInterface {}

public class MyType : IMyInterface {}

This is a simple sample:

typeof(IMyInterface).IsAssignableFrom(typeof(MyType))

or

typeof(MyType).GetInterfaces().Contains(typeof(IMyInterface))
3

In addition to testing using the "is" operator, you can decorate your methods to make sure that variables passed to it implement a particular interface, like so:

public static void BubbleSort<T>(ref IList<T> unsorted_list) where T : IComparable
{
     //Some bubbly sorting
}

I'm not sure which version of .Net this was implemented in so it may not work in your version.

  • 2
    .net 2.0 added generics. – Robert C. Barth Jan 7 '09 at 0:08
  • This is the only compile-time check in this thread, thanks. – Dustin Malone Jan 19 at 20:04
2

What worked for me is:

Assert.IsNotNull(typeof (YourClass).GetInterfaces().SingleOrDefault(i => i == typeof (ISomeInterface)));

1

Recently I tried using Andrew Kennan's answer and it didn't work for me for some reason. I used this instead and it worked (note: writing the namespace might be required).

if (typeof(someObject).GetInterface("MyNamespace.IMyInterface") != null)
  • 2
    If you end up going this route, I'm not a fan of magic strings, so I'd at minimum change this to be typeof(IMyInterface).Name instead of "MyNamespace.IMyInterface". Helps to make it name refactoring proof as a bonus. – greyalien007 May 6 '15 at 19:01
0

I used

Assert.IsTrue(myObject is ImyInterface);

for a test in my unit test which tests that myObject is an object which has implemented my interface ImyInterface.

0

I had a situation where I was passing a variable to a method and wasn't sure if it was going to be an interface or an object.

The goals were:

  1. If item is an interface, instantiate an object based on that interface with the interface being a parameter in the constructor call.
  2. If the item is an object, return a null since the constuctor for my calls are expecting an interface and I didn't want the code to tank.

I achieved this with the following:

    if(!typeof(T).IsClass)
    {
       // If your constructor needs arguments...
       object[] args = new object[] { my_constructor_param };
       return (T)Activator.CreateInstance(typeof(T), args, null);
    }
    else
       return default(T);
-13

This should work :

MyInstace.GetType().GetInterfaces();

But nice too :

if (obj is IMyInterface)

Or even (not very elegant) :

if (obj.GetType() == typeof(IMyInterface))
  • 7
    Checking for equality to typeof(IMyInterface) will always fail. Downvoted. – Jay Bazuzi Jan 4 '09 at 2:07
  • Right. There are no instances of an interface. – Rauhotz Jan 4 '09 at 10:37

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