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I've built a WPF UserControl View/ViewModel pair: the view XAML handles the layout and bindings, and the ViewModel handles the logic, in-line with the recommended MVVM pattern.

I would like to be able to re-use this as a control.

How do I hide/encapsulate the ViewModel associated with the view, so that I can use the control as I would a standard control [such as a button] ?

i.e. How do I hide the control's viewmodel ?

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2 Answers 2

depends on how you bind ViewModel class to the control. if you do like this:

 YourControl()
{
   DataContex = new ViewModel();
}

then I don't see any problems. add reference to your control and use it.

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So lets say that my control consists of a text (search string) box and a list box. The VM for the control will expose 2 collections as properties - 1. the total list of items, and 2. the list of items which matches the current search string. It will also expose 2 properties : 1. for the selected item, 2. for the search string. The primary datacontext for the control is its own internal VM, which I can do as suggested above, the question is then how to expose 'intermediate' properties on the view so that these 'intermediate' properties can be bound to props on the parent view. –  david.barkhuizen Dec 14 '10 at 12:29
    
make 'intermediate' properties as dependency properties(DP) of your control(View class) and use them in parent control as any other control with DP. –  Arseny Dec 14 '10 at 14:59
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You can create your ViewModel as a StaticResource within your XAML. The problem with setting the DataContext to your ViewModel is that you can't use that you can no longer use your DataContext from the window or page you in which you use the control.

In your XAML declare your ViewModel:

<myNS:MyViewModel x:Key="ViewModel />

Reference your view model within your XAML:

<TextBlock Text="{Binding Source={StaticResource ViewModel}, Path=TextToBind}" />

In your Code Behind you can access and initialize quickly, I usually make a property for easy reference to my view model.

 private MyViewModel viewModel
 {
    get { return this.Resources["ViewModel"] as MyViewModel; }
 }
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