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WPF: set BusyIndicator to the center of window

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1 Answer 1

Use HorizontalAlignment ="Center" and VerticalAlignment="Center" attached properties.

For example:

<Windows>
    <Grid>

    <extToolkit:BusyIndicator IsBusy="True" HorizontalAlignment ="Center" VerticalAlignment="Center"/>

    </Grid>
</Window>

In case you want a control to be over everything on the Windows, I think you should place it inside of a popup and control the popups position from code.

As a last resort, you can put BusyIndicator to a separate boardeless WPF window to top it over the WindowsFormsHost.

In order to keep a popup sticky to its parent, just call popup.Activate() each time your parent Windows is activated. This way, if some other applications windows goes over yours, both, popup and the parent will be beneath the currently active windows. The moment user activates the parent window, it will call activate on the popup, so that it appears they are stuck together. This is rather a trick, I know. Maybe someone has a better solution.

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Those are not attached properties and setting VerticalAlignment in a (vertical) StackPanel does nothing. –  H.B. Sep 13 '11 at 16:38
    
Thanks Maxim. It fails if there are other controls eg grid, WindowsFormsHost. I need BusyIndicator on top of everything and be the center of the window, and tied to the window. Thanks. –  WPF new Sep 13 '11 at 17:01
    
@H.B. Good point, thanks for correcting me. –  Maxim V. Pavlov Sep 13 '11 at 17:32
    
@WPF new - I would use a Popup as a host for BusyIndicator. That would allow you to have it over WindowsFormsHost. –  Maxim V. Pavlov Sep 13 '11 at 17:38
    
Hi Maxim, I tried popup. It behinds WindowsFormsHost and it is not tied to the owner window and shows up every window. Thanks. –  WPF new Sep 13 '11 at 17:46

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