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I was wondering why you can do this in C#:

IEnumerable<int>[] nums = new IEnumerable<int>[10];

but cannot do this:

IEnumerable<int> nums = new IEnumerable<int>();

What is C# doing under the hood with the first statement? I thought you couldn't create instances of interfaces with the new keyword.

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  • Where do you thin you create an instance? You allocate an array of type IEnumerable<int> in the first statement. Not a single instance is created.
    – TomTom
    Jan 27 '16 at 17:44
  • "What is C# doing under the hood with the first statement?" It's creating an array of 10 IEnumerables. Not what you are looking for. Try ... num = new int[10]. Jan 27 '16 at 17:57
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You are correct in that you can't create instances of interfaces in C#. The difference between the two statements is that in the first statement you are creating an array of IEnumerable<int>, which is allowed.

The second statement would work if you create an instance of a class that implements the IEnumerable<T> interface, such as List<T>.

An example of doing this is: IEnumerable<int> numbers = new List<int> {1,2,3};;

You could also do: IEnumerable<int> numbers = new int[] {1, 2, 3}

4
  • So how is this different than an int[] array? What is the IEnumerable<int> part actually doing? I thought you could only use interfaces as types to "hold" objects that implement IEnumerable. For instance, I could "hold" a List<int> in IEnumerable<int> if I'm only concerned with iterating over it. Is IEnumerable<int> just the same as an int[] array, minus being able to access elements at a particular index? Jan 27 '16 at 17:54
  • IEnumerable<T> is the base interface for collections and arrays implement it. That's why you can do IEnumerable<int> numbers = new int[] {1, 2, 3}; If you only want to iterate over a collection, I would recommend that you use IEnumerable<T>. This allows calling code to use several different implementations of IEnumerable<T>. For more information about IEnumerable<T>, please refer to: msdn.microsoft.com/en-us/library/9eekhta0(v=vs.110).aspx Jan 27 '16 at 17:57
  • 1
    Yes, I understand that that part. I guess my actual point of confusion was I was thinking integers were at every index, whereas there's something that implements an IEnumerable at every index, as Yacoub Massad pointed out. Thank you for your explanation! Jan 27 '16 at 18:03
  • @GabeMeister: Yes, that is correct. No problem, I'm just glad to help! Jan 27 '16 at 18:05
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The first statement is creating a new array of size 10 of which item type is IEnumerable<int>. The array itself is a concrete type that you can create.

To set an item in this array, you would do something like this:

num[0] = new List<int>() {1,2,3};

Although the item type is IEnumerable<int>, you cannot create an instance of IEnumerable<int>. You would have to create an instance of a class that implements IEnumerable<int> like List<int>.

In the second example, you try to create an instance of IEnumerable<int> which is an interface, i.e. not class, and so it would not compile.

The variable type can still be IEnumerable<int>, but you would have to create an instance of a class that implements IEnumerable<int> like this:

IEnumerable<int> nums = new List<int>() {1,2,3};
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  • Ah, this is what cleared it up for me. Before I was thinking at every index there was an integer, where in reality at every index there is something, (a List, ArrayList, etc.) that implements IEnumerable. Thank you! Jan 27 '16 at 18:01

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