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How can I open menu (System.Windows.Controls.Menu) programmatically in WPF?

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4 Answers 4

up vote 13 down vote accepted

Get hold of the menu item, and do this :

_menuItem.IsSubmenuOpen = true;
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Check out this example on how to open a context menu.

http://www.uxpassion.com/2009/01/how-to-enable-and-show-context-menu-on-left-click-in-wpf/

In summary

You can just call:

YourContextMenu.IsOpen = true;

This will display the context menu, just make sure its associated with a FrameworkElement on which it is displaying)

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No, the OP is asking about the Menu class (System.Windows.Controls.Menu). It doesn't have an IsOpen property. Perhaps you are thinking of the ContextMenu class. –  Reg Edit Apr 20 '14 at 17:20
    
You will also need to initialize YourContextMenu.PlacementTarget with intended "target" UIElement. Otherwise, the menu constructed dynamically from XAML string (using XamlReader) will not be able to resolve resources, and will have no icons, for example. –  zmechanic Jun 2 at 15:46
private void button_Click(object sender, RoutedEventArgs e)
        {
            var button= sender as FrameworkElement;
            if (button != null)
            {
                button.ContextMenu.IsOpen = true;
            }
        }
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void CmsBox_MouseLeftButtonDown(object sender, MouseButtonEventArgs e) { box = sender as WpfBox; ContextMenu cms = new ContextMenu(); e.Handled = true; ... }

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