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The default behavior of a WPF ContextMenu is to display it when the user right-clicks. I want the ContextMenu to show when the user left-clicks. It seems like this should be a simple property on ContextMenu, but it is not.

I rigged it, so that I handle the LeftMouseButtonDown event in the code-behind and then display the context menu.

I'm using MVVM in my project which means I'm using DataTemplates for the items that have the context menus. It would be much more elegant to get rid of the code-behind and find a way to display the context menu using triggers or properties in the XAML.

Any ideas or solutions to this issue?

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Unfortunately I don't think there is a XAML only solution to this one. The context-menu behavior is baked in to the FrameworkElement. –  Micah Feb 17 '09 at 1:55
    
It's a departure from the standard in Windows, do you have good justification for doing this? –  Adam Ralph Feb 17 '09 at 8:43
    
That is a good point, maybe I should be using something other than the ContextMenu to get this done. It is basically a drop-down menu that appears when you click on the item, not a button, but kind of buttony. ContextMenu seemed like an obvious choice, but maybe that is wrong. –  timothymcgrath Feb 20 '09 at 3:39
    
See my answer which uses Expression Blend Triggers here: stackoverflow.com/a/4917707/87912 –  Flatliner DOA Aug 21 '12 at 4:57
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2 Answers

up vote 6 down vote accepted

What I would suggest doing is making a new static class with attached DependencyProperty. Call the class LeftClickContextMenu and the property Enabled (just ideas). When your registering the DependencyProperty add an on changed callback. Then in the property changed callback if Enabled is set to true then add a handler to the LeftMouseButtonDown event and do your stuff there. If Enabled is set to false remove the handler. This sould allow you to set it like a property on anything by simply using the following in your xaml.

<Border namespace:LeftClickContextMenu.Enabled="True" />

This technique is called an attached behavior and you can read more about it in this code project article: http://www.codeproject.com/KB/WPF/AttachedBehaviors.aspx

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I think this solution is easier: uxpassion.com/blog/old-blog/… –  Sonhja Feb 25 '13 at 10:02
    
It is definitely an easier approach and if you only need it one spot I would recommend just putting the code in the code behind. However if you need this behaviour in a few places the attached behavior method I have suggested is nicer IMO. –  Caleb Vear Mar 8 '13 at 4:33
    
Oh and if you wanted an even easier solution with a button you can just use a ToggleButton and bind it's IsChecked property to the context menu's IsOpen property. –  Caleb Vear Mar 8 '13 at 4:35
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While Caleb's answer is correct, it doesn't include working code. I setup an example using VB.NET (sorry) so I'm posting it here.

<Window x:Class="MainWindow"
    xmlns="http://schemas.microsoft.com/winfx/2006/xaml/presentation"
    xmlns:x="http://schemas.microsoft.com/winfx/2006/xaml"
    xmlns:local="clr-namespace:AttachedBehaviorTest.AttachedBehaviorTest"
    Title="MainWindow" Height="350" Width="525">
    <Grid>
        <StackPanel>
            <TextBlock local:ContextMenuLeftClickBehavior.IsLeftClickEnabled="True">Some Text Goes Here
                <TextBlock.ContextMenu>
                    <ContextMenu>
                        <MenuItem Header="Test1" />
                    </ContextMenu>
                </TextBlock.ContextMenu>            
            </TextBlock>

        </StackPanel>
    </Grid>
</Window>
Namespace AttachedBehaviorTest

    Public NotInheritable Class ContextMenuLeftClickBehavior

        Private Sub New()
        End Sub

        Public Shared Function GetIsLeftClickEnabled(obj As DependencyObject) As Boolean
            Return CBool(obj.GetValue(IsLeftClickEnabled))
        End Function

        Public Shared Sub SetIsLeftClickEnabled(obj As DependencyObject, value As Boolean)
            obj.SetValue(IsLeftClickEnabled, value)
        End Sub

        Public Shared ReadOnly IsLeftClickEnabled As DependencyProperty = _
            DependencyProperty.RegisterAttached("IsLeftClickEnabled", GetType(Boolean), GetType(ContextMenuLeftClickBehavior), New UIPropertyMetadata(False, AddressOf OnIsLeftClickEnabled))

        Private Shared Sub OnIsLeftClickEnabled(sender As Object, e As DependencyPropertyChangedEventArgs)
            Dim fe As FrameworkElement = TryCast(sender, FrameworkElement)
            If fe IsNot Nothing Then
                Dim IsEnabled As Boolean = CBool(e.NewValue)
                If IsEnabled = True Then
                    AddHandler fe.MouseLeftButtonUp, AddressOf OnMouseLeftButtonUp
                    Debug.Print("Added Handlers")
                Else
                    RemoveHandler fe.MouseLeftButtonUp, AddressOf OnMouseLeftButtonUp
                    Debug.Print("RemovedHandlers")
                End If 
            End If
        End Sub

        Private Shared Sub OnMouseLeftButtonUp(sender As Object, e As RoutedEventArgs)
            Debug.Print("OnMouseLeftButtonUp")
            Dim fe As FrameworkElement = TryCast(sender, FrameworkElement)
            If fe IsNot Nothing Then
                'Next Line is Needed if Context Menu items are Data Bound
                'fe.ContextMenu.DataContext = fe.DataContext
                fe.ContextMenu.IsOpen = True
            End If
        End Sub

    End Class

End Namespace
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