17

I have a ViewModel defined like this:

 public class LocationTreeViewModel<TTree> : 
               ObservableCollection<TTree>, INotifyPropertyChanged
                                                    where TTree : TreeBase<TTree>

I want to reference it in the DataType attribute of a DataTemplate in XAML. How can I do that?

12

No, you cannot express a generics type in XAML. You will have to create a concrete type that extends your generic one ...

public class FooLocationTreeViewModel : LocationTreeViewModel<Foo>
{
}
3

In XAML 2006 this is not supported. You can, however, roll your own if you want to have this functionality.

This link has a nice tutorial on creating markup extensions.

Usage would be like this:

<Grid xmlns:ext="clr-namespace:CustomMarkupExtensions">
  <TextBlock Text="{ext:GenericType FooLocationTreeViewModel(Of Foo)}" />
</Grid>

You have to choose and implement the syntax though. I suggest the VB notation since it won't interfere like the C# notation does with < and >.

  • 4
    wont work as the DataType bit of a DataTemplate doesnt permit markup extensions – Ruben Bartelink Nov 20 '15 at 13:12
-1

The {x:Type} markup extension supports allows generic type arguments to be specified as a comma separated list in parentheses.

Here's an example:

<UserControl x:Class="Test"
        xmlns="http://schemas.microsoft.com/winfx/2006/xaml/presentation"
        xmlns:x="http://schemas.microsoft.com/winfx/2006/xaml"
        xmlns:generic="clr-namespace:System.Collections.Generic;assembly=mscorlib"
        xmlns:sys="clr-namespace:System;assembly=mscorlib">
    <UserControl.Resources>
        <DataTemplate DataType="{x:Type generic:List(sys:Int64)}">
            <TextBlock Text="{Binding Count}"/>
        </DataTemplate>
    </UserControl.Resources>
</UserControl>

I am using .Net 4.5 on VS 2015, so your mileage may vary.

  • 6
    This does not compile, at least not with framework 4.7.2 in VS2017. And I only found mention of a comma separated list in parentheses in the x:TypeArguments documentation, but not for x:Type. – Clemens Sep 8 '18 at 21:09
-3

The only way i could do this is to use MarkupExtensions.

public class GenericType : MarkupExtension
{
     private readonly Type _of;
     public GenericType(Type of)
     {
         _of = of;
     }
     public override object ProvideValue(IServiceProvider serviceProvider)
     {
         return typeof(LocationTreeViewModel<>).MakeGenericType(_of);
     }
}

And to use it i just need to do this:

<DataTemplate DataType="{app:GenericType app:TreeBaseClass}">
  • 2
    It's a poor solution since it's coupled to the LocationTreeViewModel class.. – franssu Apr 3 '14 at 9:51
  • @franssu:Thanks for your comment,but i don't understand what you mean?i didnt want to use this for every generic classes,i don't think its even possible! Do you have a better solution? – Gypsy Oct 13 '14 at 8:31
  • 1
    -1: Unfortunately this triggers a MC error; DataTemplate's DataType can only accept a predefined set of extensions [such as x:Type]. Suck up @ColinE's answer was my conclusion – Ruben Bartelink Nov 20 '15 at 11:54
-3

Slightly improved version of MarkupExtension, work for classes upto 3 generic parameters.

  public class GenericTypeExtension : MarkupExtension
  {
    public GenericTypeExtension()
    {

    }
    public GenericTypeExtension(string baseTypeName_, Type genericType1_, Type genericType2_, Type genericType3_)
    {
      BaseTypeName = baseTypeName_;
      GenericType1 = genericType1_;
      GenericType2 = genericType2_;
      GenericType3 = genericType3_;
    }
    public string BaseTypeName { get; set; }
    public string BaseTypeAssemblyName { get; set; }
    public Type GenericType1 { get; set; }
    public Type GenericType2 { get; set; }
    public Type GenericType3 { get; set; }

    public override object ProvideValue(IServiceProvider serviceProvider_)
    {
      var list = new List<Type>();
      if (GenericType1 != null)
      {
        list.Add(GenericType1);
      }
      if (GenericType2 != null)
      {
        list.Add(GenericType2);
      }
      if (GenericType3 != null)
      {
        list.Add(GenericType3);
      }

      var type = Type.GetType(string.Format("{0}`{1}, {2}", BaseTypeName, list.Count, BaseTypeAssemblyName));
      if (type != null)
      {
        return type.MakeGenericType(list.ToArray());
      }
      return null;
    }

  }
  • This does not answer the OP - no use for datatemplates – Ruben Bartelink Nov 20 '15 at 13:13
  • Actually, this kind of does. You then use the markup extension in the DataType field of the DataTemplate. – MarqueIV Dec 12 '18 at 7:41

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