802

Let's say I have a generic member in a class or method, like so:

public class Foo<T>
{
    public List<T> Bar { get; set; }
    
    public void Baz()
    {
        // get type of T
    }   
}

When I instantiate the class, the T becomes MyTypeObject1, so the class has a generic list property: List<MyTypeObject1>. The same applies to a generic method in a non-generic class:

public class Foo
{
    public void Bar<T>()
    {
        var baz = new List<T>();
        
        // get type of T
    }
}

I would like to know what type of objects the list of my class contains. So what type of T does the list property called Bar or the local variable baz contain?

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

17 Answers 17

842

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.

4
  • 64
    I love how readable typeof is. If you want to know the type of T, just use typeof(T) :) Feb 17, 2012 at 13:00
  • 2
    I actually just used typeof(Type) and it works great.
    – Anton
    Jun 26, 2017 at 14:39
  • 3
    You can't use typeof() with a generic parameter, though.
    – Reynevan
    Mar 8, 2019 at 17:52
  • 8
    @Reynevan Of course you can use typeof() with a generic parameter. Do you have any example where it wouldn't work? Or are you confusing type parameters and references?
    – Luaan
    Jul 26, 2019 at 7:41
564

(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];
12
  • 3
    Type type = abc.GetType().GetGenericArguments()[0]; ==> Out of bounds array index... Feb 17, 2009 at 15:31
  • 33
    @Daok : then it isn't a List<T> Feb 17, 2009 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> Feb 17, 2009 at 15:34
  • 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. Feb 17, 2009 at 15:49
  • 1
    Type type = abc.GetType().GetProperty("Item").PropertyType; return BindingListView<MyObject> instead of MyObject... Feb 17, 2009 at 15:57
57

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
2
  • 15
    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, 2015 at 20:42
  • 2
    @recursive: It's useful if you're working with a list of an anonymous type.
    – JJJ
    Jun 17, 2016 at 12:15
34

Try

list.GetType().GetGenericArguments()
2
  • 7
    new List<int>().GetType().GetGenericArguments() returns System.Type[1] here with System.Int32 as entry
    – Rauhotz
    Feb 17, 2009 at 15:40
  • 1
    @Rauhotz the GetGenericArguments method returns an Array object of Type, of which you need to then parse out the position of the Generic Type you need. Such as Type<TKey, TValue>: you would need to GetGenericArguments()[0] to get TKey type and GetGenericArguments()[1] to get TValue type
    – GoldBishop
    Apr 18, 2018 at 16:37
17

The following works for me. Where myList is some unknown kind of list.

IEnumerable myEnum = myList as IEnumerable;
Type entryType = myEnum.AsQueryable().ElementType;
4
  • 1
    I get an error that it requires a type argument (i.e. <T>) May 21, 2015 at 14:26
  • Joseph and others, to get rid of the error it is in System.Collections. Jan 16, 2016 at 4:58
  • 1
    Just the second line is needed for me. A List is already an implementation of IEnumerable, so the cast doesn't seem to add anything. But thanks, it's a good solution. Nov 22, 2016 at 13:44
  • This worked for me as I have a ref type, that can and often does have no items - the other answers did not work
    – Arkaine80
    Nov 15, 2021 at 9:47
17

If you don’t need the whole Type variable and just want to check the type, you can easily create a temporary variable and use the is operator.

T checkType = default(T);

if (checkType is MyClass)
{}
7
  • This should be the accepted answer, certainly the most performant.
    – Serj Sagan
    Nov 5, 2020 at 18:52
  • Code Like a Pro :) Mar 14, 2021 at 11:07
  • @EbrahimKarimi For sure :-)
    – Sebi
    Mar 14, 2021 at 11:11
  • 1
    It's completely wrong, instead, we can use ``` if (typeof(T) == typeof(Person)) ``` Aug 18, 2021 at 10:22
  • 1
    @VõQuangHòa I completely vote for your comment. your comments the right answer here Jan 1 at 22:11
11

You can use this one for the return type of a generic list:

public string ListType<T>(T value)
{
    var valueType = value.GetType().GenericTypeArguments[0].FullName;
    return valueType;
}
8

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;
}

public static string StripStartingWith(this string s, string stripAfter)
{
    if (s == null)
    {
        return null;
    }
    var indexOf = s.IndexOf(stripAfter, StringComparison.Ordinal);
    if (indexOf > -1)
    {
        return s.Substring(0, indexOf);
    }
    return s;
}

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.

1
  • An explanation would be in order. E.g., what is the gist of it? What is the idea? Please respond by editing your answer, not here in comments (without "Edit:", "Update:", or similar - the answer should appear as if it was written today). Jun 21, 2021 at 20:00
8

Consider this:

I use it to export 20 typed lists by the 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);
    }
}
2
  • 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, 2013 at 7:48
  • Also, you are calling GetType on a FirstOrDefault entry resulting in a potential null reference exception. If you are sure that it will return at least one item, why not use First instead? Mar 16, 2015 at 5:56
8

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();
6

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).

1

Using 3dGrabber's solution:

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

//and now

var list = new Dictionary<string, int>();
var stronglyTypedVar = list.GetEnumeratedType();
0
public bool IsCollection<T>(T value){
  var valueType = value.GetType();
  return valueType.IsArray() || typeof(IEnumerable<object>).IsAssignableFrom(valueType) || typeof(IEnumerable<T>).IsAssignableFrom(valuetype);
}
2
  • 1
    This appears to address the question of whether the type is a list-y sort of thing, but the question is more about how to determine what generic type parameter a type that is known to be a List already was initialized with. May 6, 2015 at 0:38
  • An explanation would be in order. E.g., what is the gist of it? What is the idea? Please respond by editing your answer, not here in comments (without "Edit:", "Update:", or similar - the answer should appear as if it was written today). Jun 21, 2021 at 20:00
0

If you want to know a property's underlying type, try this:

propInfo.PropertyType.UnderlyingSystemType.GenericTypeArguments[0]
-1

This is how I did it:

internal static Type GetElementType(this Type type)
{
    // Use type.GenericTypeArguments if it exists
    if (type.GenericTypeArguments.Any())
        return type.GenericTypeArguments.First();

    return type.GetRuntimeProperty("Item").PropertyType);
}

Then call it like this:

var item = Activator.CreateInstance(iListType.GetElementType());

Or

var item = Activator.CreateInstance(Bar.GetType().GetElementType());
0
-2

try this.

if (typeof(T) == typeof(Person))

-9

Type:

type = list.AsEnumerable().SingleOrDefault().GetType();
3
  • 1
    This would throw a NullReferenceException if the list has no elements inside it for it to test against.
    – rossisdead
    Jul 14, 2010 at 2:26
  • 1
    SingleOrDefault() also throws InvalidOperationException when there are two or more elements.
    – devgeezer
    Mar 14, 2012 at 15:08
  • This answer is wrong, as pointed out correctly by \@rossisdead and \@devgeezer.
    – Oliver
    Jan 23, 2013 at 9:53

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