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Let say I have a List<T> abc = new List< T >; inside a class public class MyClass<T>//....

Later, when I initialize the class, the T becomes MyTypeObject1. So I have a generic list, List< MyTypeObject1 >.

I would like to know, what type of object the list of my class contain, e.g. the list called abc contain what type of object?

I cannot do abc[0].GetType(); because the list might contain zero elements. How can I do it?

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11 Answers 11

up vote 297 down vote accepted

If I understand correctly, your list has the same type parameter as the container class itself. If this is the case, then:

Type typeParameterType = typeof(T);

If you are in the lucky situation of having object as a type parameter, see Marc's answer.

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3  
Lol - yes, very true; I assumed that the OP only had object, IList, or similar - but this could very well be the right answer. –  Marc Gravell Feb 17 '09 at 15:32
5  
I love how readable typeof is. If you want to know the type of T, just use typeof(T) :) –  demoncodemonkey Feb 17 '12 at 13:00

(note: I'm assuming that all you know is object or IList or similar, and that the list could be any type at runtime)

If you know it is a List<T>, then:

Type type = abc.GetType().GetGenericArguments()[0];

Another option is to look at the indexer:

Type type = abc.GetType().GetProperty("Item").PropertyType;

Using new TypeInfo:

using System.Reflection;
// ...
var type = abc.GetType().GetTypeInfo().GenericTypeArguments[0];
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1  
Type type = abc.GetType().GetGenericArguments()[0]; ==> Out of bounds array index... –  Patrick Desjardins Feb 17 '09 at 15:31
13  
@Daok : then it isn't a List<T> –  Marc Gravell Feb 17 '09 at 15:32
    
Need something for BindingList or List or whatever object that hold a <T>. What I am doing use a custom BindingListView<T> –  Patrick Desjardins Feb 17 '09 at 15:34
1  
Anything that is generic with one type argument should work. –  Marc Gravell Feb 17 '09 at 15:36
1  
Give a try with BindingList<T>, our BindingListView<T> inherit from BindingList<T> and both I have try both of your option and it doesn't work. I might do something wrong... but I think this solution work for the type List<T> but not other type of list. –  Patrick Desjardins Feb 17 '09 at 15:49

With the following extension method you can get away without reflection:

public static Type GetListType<T>(this List<T> _)
{
    return typeof(T);
}

Or more general:

public static Type GetEnumeratedType<T>(this IEnumerable<T> _)
{
    return typeof(T);
}

Usage:

List<string>        list    = new List<string> { "a", "b", "c" };
IEnumerable<string> strings = list;
IEnumerable<object> objects = list;

Type listType    = list.GetListType();           // string
Type stringsType = strings.GetEnumeratedType();  // string
Type objectsType = objects.GetEnumeratedType();  // BEWARE: object
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This is only useful if you already know the type of T at compile time. In which case, you don't really need any code at all. –  recursive Feb 12 at 20:42

Try

list.GetType().GetGenericArguments()
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This is not working.... GetGenericArguments return System.Type[0] –  Patrick Desjardins Feb 17 '09 at 15:32
4  
new List<int>().GetType().GetGenericArguments() returns System.Type[1] here with System.Int32 as entry –  Rauhotz Feb 17 '09 at 15:40

Consider this: I use it to export 20 typed list by same way:

private void Generate<T>()
{
    T item = (T)Activator.CreateInstance(typeof(T));

    ((T)item as DemomigrItemList).Initialize();

    Type type = ((T)item as DemomigrItemList).AsEnumerable().FirstOrDefault().GetType();
    if (type == null) return;
    if (type != typeof(account)) //account is listitem in List<account>
    {
        ((T)item as DemomigrItemList).CreateCSV(type);
    }
}
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1  
This doesn't work if T is an abstract superclass of the actual added objects. Not to mention, just new T(); would do the same thing as (T)Activator.CreateInstance(typeof(T));. It does require that you add where T : new() to the class/function definition, but if you want to make objects, that should be done anyway. –  Nyerguds Jul 11 '13 at 7:48

That's work for me. Where myList is some unknowed kind of list.

IEnumerable myEnum = myList as IEnumerable;
Type entryType = myEnum.AsQueryable().ElementType;
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The GetGenericArgument() method has to be set on the Base Type of your instance (whose class is a generic class myClass<T>). Otherwise, it returns a type[0]

Example:

Myclass<T> instance = new Myclass<T>();
Type[] listTypes = typeof(instance).BaseType.GetGenericArguments();
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You can get the type of "T" from any collection type that implements IEnumerable<T> with the following:

public static Type GetCollectionItemType(Type collectionType)
{
    var types = collectionType.GetInterfaces()
        .Where(x => x.IsGenericType 
            && x.GetGenericTypeDefinition() == typeof(IEnumerable<>))
        .ToArray();
    // Only support collections that implement IEnumerable<T> once.
    return types.Length == 1 ? types[0].GetGenericArguments()[0] : null;
}

Note that it doesn't support collection types that implement IEnumerable<T> twice, e.g.

public class WierdCustomType : IEnumerable<int>, IEnumerable<string> { ... }

I suppose you could return an array of types if you needed to support this...

Also, you might also want to cache the result per collection type if you're doing this a lot (e.g. in a loop).

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I use this extension method to accomplish something similar:

public static string GetFriendlyTypeName(this Type t)
{
    var typeName = t.Name.StripStartingWith("`");
    var genericArgs = t.GetGenericArguments();
    if (genericArgs.Length > 0)
    {
        typeName += "<";
        foreach (var genericArg in genericArgs)
        {
            typeName += genericArg.GetFriendlyTypeName() + ", ";
        }
        typeName = typeName.TrimEnd(',', ' ') + ">";
    }
    return typeName;
}

You use it like this:

[TestMethod]
public void GetFriendlyTypeName_ShouldHandleReallyComplexTypes()
{
    typeof(Dictionary<string, Dictionary<string, object>>).GetFriendlyTypeName()
        .ShouldEqual("Dictionary<String, Dictionary<String, Object>>");
}

This isn't quite what you're looking for, but it's helpful in demonstrating the techniques involved.

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Type:

type = list.AsEnumerable().SingleOrDefault().GetType();
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1  
This would throw a NullReferenceException if the list has no elements inside it for it to test against. –  rossisdead Jul 14 '10 at 2:26
1  
SingleOrDefault() also throws InvalidOperationException when there are two or more elements. –  devgeezer Mar 14 '12 at 15:08
    
This answer is wrong, as pointed out correctly by \@rossisdead and \@devgeezer. –  Oliver Jan 23 '13 at 9:53

You can get the type of T using typeofshould do what you need.

typeof(T)

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18  
You exactly copy paste the answer of the guy who answer me 1 month ago lol –  Patrick Desjardins Mar 19 '09 at 12:45
1  
It doesn't look like an exact copy now... –  Paul Draper Apr 19 '13 at 19:14

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