I have Button and I have bind this button to command in ViewModel say OpenWindowCommand. When I click on button I want to open new window. But creating window instance and showing window from view model is violation of MVVM. I have created interface like

interface IWindowService
{
 void showWindow(object dataContext);
}

and WindowService implements this interface like

class WindowService:IWindowService
{
 public void showWindow(object dataContext)
 {
  ChildWindow window=new ChildWindow();
  window.DataContext=dataContext;
  window.Show();
  }
}

In this class I have specified ChildWindow. So this class is tightly coupled with showing ChildWindow. When I want to show another window,I have to implement another class with same interface and logic.How can I make this class generic so that I can pass just instance of any window and class will be able to open any window? I am not using any built MVVM frameworks.I have read many articles on StackOverflow but I could not found any solution for this.

  • 1
    I've found an alternative way of opening windows in MVVM, using a behavior instead of a service. – Mike Fuchs Sep 19 '14 at 14:28
up vote 36 down vote accepted

You say "creating window instance and showing window from view model is violation of MVVM". This is correct.

You are now trying to create an interface that takes a type of view specified by the VM. This is just as much of a violation. You may have abstracted away the creation logic behind an interface, but you are still requesting view creations from within the VM.

VM's should only care about creating VM's. If you really need a new window to host the new VM, then provide an interface as you have done, but one that does NOT take a view. Why do you need the view? Most (VM first) MVVM projects use implicit datatemplates to associate a view with a particular VM. The VM knows nothing about them.

Like this:

class WindowService:IWindowService
{
    public void ShowWindow(object viewModel)
    {
        var win = new Window();
        win.Content = viewModel;
        win.Show();
    }
}

Obviously you need to make sure you have your VM->View implicit templates set up in app.xaml for this to work. This is just standard VM first MVVM.

eg:

<Application x:Class="My.App"
             xmlns="http://schemas.microsoft.com/winfx/2006/xaml/presentation"
             xmlns:x="http://schemas.microsoft.com/winfx/2006/xaml"
             xmlns:vm="clr-namespace:My.App.ViewModels"
             xmlns:vw="clr-namespace:My.App.Views"
             StartupUri="MainWindow.xaml">
    <Application.Resources>

        <DataTemplate DataType="{x:Type vm:MyVM}">
            <vw:MyView/>
        </DataTemplate>

    </Application.Resources>
</Application>
  • How can I open a window without passing window to function? – DT sawant Sep 15 '14 at 10:50
  • 1
    Why do you need different Window types? The window is just a container for the view. Just use a generic window and use implicit DataTemplates as normal for mapping VM->View – GazTheDestroyer Sep 15 '14 at 10:52
  • 2
    One of the reasons the VM knows nothing about the View is because you can have multiple Views to display the data in the ViewModel in different ways. This method makes your views and viewmodels have a 1:1 mapping. – Nick Mar 15 '15 at 16:03
  • 3
    This solution will not working if MyView is a Window. It will throw an error of 'Can't put window in style' – Jack Frost Mar 31 '16 at 6:40
  • 5
    I hope vw:MyView should be of type UserControl and not of type Window – Gopichandar Aug 24 '16 at 10:23

One possibility is to have this:

class WindowService:IWindowService
{
 public void showWindow<T>(object DataContext) where T: Window, new() 
 {
  ChildWindow window=new T();
  window.Datacontext=DataContext;
  window.show();
 }
}

Then you can just go something like:

windowService.showWindow<Window3>(windowThreeDataContext);

For more information on the new constraint, see http://msdn.microsoft.com/en-gb/library/sd2w2ew5.aspx

Note: the new() constraint only works where the window will have a parameterless constructor (but I imagine this shouldn't be a problem in this case!) In a more general situation, see Create instance of generic type? for possibilities.

  • 5
    windowService.showWindow<Window3>(windowThreeDataContext); this statement is in viewmodel and it contains name of view.Doesn't it violet the MVVM approach? – DT sawant Sep 15 '14 at 10:52
  • Indeed - sorry, I was taking the question How can I make this class generic so that I can pass just instance of any window and class will be able to open any window? a little too strongly, and didn't properly discuss the root issue! Somewhere in an MVVM approach you will need to make windows/views, so the above can be useful - potentially you either have a mapping from ViewModel to View, or some form of convention (eg \ViewModels\MyViewModel.cs -> \Views\MyView.cs), but it's up to you :) – David E Sep 15 '14 at 11:22
  • Personally, I'd advocate using a framework if you want to go for a hardcore MVVM approach, which usually wraps all this up for you :). I've used Caliburn Micro which I really like, but it's up to you ^^ – David E Sep 15 '14 at 11:23

You could write a function like this:

class ViewManager
{
    void ShowView<T>(ViewModelBase viewModel)
        where T : ViewBase, new()
    {
        T view = new T();
        view.DataContext = viewModel;
        view.Show(); // or something similar
    }
}

abstract class ViewModelBase
{
    public void ShowView(string viewName, object viewModel)
    {
        MessageBus.Post(
            new Message 
            {
                Action = "ShowView",
                ViewName = viewName,
                ViewModel = viewModel 
            });
    }
}

Make sure the ViewBase has a DataContext property. (You could inherit UserControl)

In general I would make some kind of message bus and have a ViewManager listen for messages asking for a view. ViewModels would send a message asking for a view to be shown and the data to show. The ViewManager would then use the code above.

To prevent the calling ViewModel to know about the View types you could pass a string/logical name of the view to the ViewManager and have the ViewManager translate the logical name into a type.

  • I may be wrong, but I'm fairly sure you need the where T: ViewBase, new() in order to create a new object of generic type in your function? a la: msdn.microsoft.com/en-gb/library/sd2w2ew5.aspx – David E Sep 15 '14 at 10:30
  • @DavidEdey - yes indeed. No need to copy my answer... – Erno de Weerd Sep 15 '14 at 10:37
  • It was a case of simultaneous answering - yours wasn't there when I wrote mine, then I refreshed to find you had beaten me to it! Apologies Erno :) – David E Sep 15 '14 at 10:39
  • @DavidEdey - :) np it is not a race – Erno de Weerd Sep 15 '14 at 10:41
  • @ErnodeWeerd In your case I will still need to refer view from viewmodel. I don't have to create instance there but at least I have to refer to View.So doesn't it violet MVVM? – DT sawant Sep 15 '14 at 11:14

use a contentpresenter in your Window where you bind your DataConext to. And then define a Datatemplate for your DataContext so wpf can render your DataContext. something similar to my DialogWindow Service

so all you need is your one ChildWindow with a ContentPresenter:

<Window x:Class="ChildWindow"
xmlns="http://schemas.microsoft.com/winfx/2006/xaml/presentation" 
WindowStartupLocation="CenterOwner" SizeToContent="WidthAndHeight">
<ContentPresenter Content="{Binding .}">

</ContentPresenter>
</Window>

I find the accepted solution very useful, but when trying it practically, I found that it lacks the ability to make the UserControl (the View that results from the VM -> View mapping) dock within the hosting window in order to occupy the whole area provided by it. So I extended the solution to include this ability:

public Window CreateWindowHostingViewModel(object viewModel, bool sizeToContent)
{
   ContentControl contentUI = new ContentControl();
   contentUI.Content = viewModel;
   DockPanel dockPanel = new DockPanel();
   dockPanel.Children.Add(contentUI);
   Window hostWindow = new Window();
   hostWindow.Content = dockPanel;

   if (sizeToContent)
       hostWindow.SizeToContent = SizeToContent.WidthAndHeight;

   return hostWindow;
}

The trick here is using a DockPanel to host the view converted from the VM.

Then you use the previous method as follows, if you want the size of the window to match the size of its contents:

var win = CreateWindowHostingViewModel(true, viewModel)
win.Title = "Window Title";
win.Show();

or as follows if you have a fixed size for the window:

var win = CreateWindowHostingViewModel(false, viewModel)
win.Title = "Window Title";
win.Width = 500;
win.Height = 300;
win.Show();

Maybe you could pass the window type.

Try using Activator.CreateInstance().

See the following question: Instantiate an object with a runtime-determined type.

Solution by chakrit:

// determine type here
var type = typeof(MyClass);

// create an object of the type
var obj = (MyClass)Activator.CreateInstance(type);

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