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Can we have a viewModel for App.Xaml so that we can do some logical deductions on startUp and also form a starting point of app...

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1  
But App.xaml isn't really a "view" in the sense of the word, is it... –  BoltClock Oct 4 '11 at 11:58

2 Answers 2

No, App.xaml is not a Window class, it is your Application class.

You can still overwrite the OnStartup() method of it to handle your own custom logic and to startup specific Views/ViewModels.

For example,

protected override void OnStartup(StartupEventArgs e)
{
    base.OnStartup(e);

    var login = new LoginDialog();
    var loginVm = new LoginViewModel();

    login.DataContext = loginVm;
    login.ShowDialog();

    if (!login.DialogResult.GetValueOrDefault())
    {
        Environment.Exit(0);
    }

    // Providing we have a successful login, startup application
    var app = new ShellView();
    var context = new ShellViewModel(loginVm.CurrentUser);
    app.DataContext = context;
    app.Show();
}
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I got your point then how will i handle this situation Toggle views –  Ankesh Oct 5 '11 at 4:45
1  
The ShellViewModel would handle whatever view is Current, just like the top answer to your question said. Here's another example of switching Views: rachel53461.wordpress.com/2011/05/28/… –  Rachel Oct 5 '11 at 11:24

No we cannot have view models at App level. As @BoltClock suggested, It isnt something that has a data context to which we bind an instance of any class. MVVM does not work with App.

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So how will i open a "view" based on CommandLine Arguments supplied –  Ankesh Oct 4 '11 at 13:21
    
Views are actually 2 Windows i.e the application can open in 2 modes –  Ankesh Oct 4 '11 at 13:24
    
Application class has a static Main() method isnt it? That will accept your command line parameters and based on that it will create a window and launch its contents using GetContentStream() call. –  WPF-it Oct 4 '11 at 13:25

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