I am trying to do something that seems relatively simple and logic from a user interface level but I have one bug that is very annoying. I have a ToggleButton and I am trying to show a Popup when the button is toggled in and hide the Popup when the button is toggled out. The Popup also hides when the user clicks away from it.

Everything is working as expected with the following XAML except when I click the toggle button after the Popup is shown, the Popup disappears for a split second then reappears.

I suspect what's going on here is that clicking away from the Popup is causing it to toggle the button off then immediately after the button is toggled back on as the mouse clicks it. I just don't know how to go about fixing it.

Any help is appreciated. Thanks.

    <ToggleButton x:Name="TogglePopupButton" Content="My Popup Toggle Button" Width="100" />

    <Popup StaysOpen="False" IsOpen="{Binding IsChecked, ElementName=TogglePopupButton, Mode=TwoWay}">
        <Border Width="100" Height="200" Background="White" BorderThickness="1" BorderBrush="Black">
            <TextBlock>This is a test</TextBlock>
        </Border>                
    </Popup>
  • This shouldn't be as difficult as it is. – Matt Becker Feb 27 '17 at 13:08
up vote 31 down vote accepted

Stephans answers has the disadvantage, that the desired behaviour of closing the popup whenever it loses focus also disappears.

I solved it by disabling the toggle-button when the popup is open. An alternative would be to use the IsHitTestVisible Property instead of is enabled:

    <ToggleButton x:Name="TogglePopupButton" Content="My Popup Toggle Button" Width="100"  IsEnabled="{Binding ElementName=ToggledPopup, Path=IsOpen, Converter={StaticResource BoolToInvertedBoolConverter}}"/>
    <Popup x:Name="ToggledPopup" StaysOpen="False" IsOpen="{Binding IsChecked, ElementName=TogglePopupButton, Mode=TwoWay}">
        <Border Width="100" Height="200" Background="White" BorderThickness="1" BorderBrush="Black">
            <TextBlock>This is a test</TextBlock>
        </Border>                
    </Popup>

The converter looks like this:

public class BoolToInvertedBoolConverter : IValueConverter
{
    public object Convert(object value, Type targetType, object parameter, System.Globalization.CultureInfo culture)
    {
        if (value is bool)
        {
            bool boolValue = (bool)value;
            return !boolValue;
        }
        else
            return false;
    }

    public object ConvertBack(object value, Type targetType, object parameter, System.Globalization.CultureInfo culture)
    {
        throw new NotImplementedException("ConvertBack() of BoolToInvertedBoolConverter is not implemented");
    }
}
  • 4
    Very clever. I used the IsHitTestVisibile method because we need IsEnabled for other reasons. – craftworkgames Jan 10 '13 at 23:43
  • 3
    This solves the problem, but the solution apparently depends on some tricky timing. When I replace the converter with equivalent view model binding, it no longer works. Apparently button down sets IsOpen = false, reenabling the ToggleButton, and button up triggers the ToggleButton. No idea why the converter version works. I am afraid the timing might bomb out later when new version of the framework is released or when this solution is used in non-trivial ways. – Robert Važan Nov 27 '14 at 17:57
  • @RobertVažan I have put the popup into a custom control and now experience the problem you specified. It works if the popup is part of the outer control as this answer gives. – Jeff L. Jan 22 '15 at 17:38
  • @RobertVažan The ViewModel version of this solution seems to work if you add a delay to the binding: <Popup IsOpen="{Binding IsPopupOpen, Delay=10}"> – Sebastian Negraszus Feb 19 at 14:35

Solution without IValueConverter:

<Grid>
    <ToggleButton x:Name="TogglePopupButton" Content="My Popup Toggle Button" Width="100" >
        <ToggleButton.Style>
            <Style TargetType="{x:Type ToggleButton}">
                <Setter Property="IsHitTestVisible" Value="True"/>
                <Style.Triggers>
                    <DataTrigger Binding="{Binding ElementName=Popup, Path=IsOpen}" Value="True">
                        <Setter Property="IsHitTestVisible" Value="False"/>
                    </DataTrigger>
                </Style.Triggers>
            </Style>
        </ToggleButton.Style>
    </ToggleButton>

    <Popup StaysOpen="false" IsOpen="{Binding IsChecked, ElementName=TogglePopupButton, Mode=TwoWay}"
               PlacementTarget="{Binding ElementName=TogglePopupButton}" PopupAnimation="Slide" 
           x:Name="Popup">
        <Border Width="100" Height="200" Background="White" BorderThickness="1" BorderBrush="Black">
            <TextBlock>This is a test</TextBlock>
        </Border>
    </Popup>
</Grid>
  • This solution works perfectly and saves me from writing another converter. Great job! – Roy T. Mar 3 '16 at 8:29

On the ToggleButton set the Property ClickMode="Press"apixeltoofar

  • This seems to work at the first glance, but while clicking the ToggleButton no longer re-opens the Popup, clicking anywhere else suddenly fails to close the Popup as intended. I don't understand why exactly that is happing and if it's fixable, but I could not get it to work. – Sebastian Negraszus Feb 19 at 14:11

Set StaysOpen="True" for your Popup

From MSDN:

Gets or sets a value that indicates whether the Popup control closes when the control is no longer in focus.

[...]

true if the Popup control closes when IsOpen property is set to false;

false if the Popup control closes when a mouse or keyboard event occurs outside the Popup control.

  • 3
    The desired effect is to still have the popup close when focus is lost. The problem is when you use a ToggleButton to open the Popup, and you attempt to close the Popup by clicking on the ToggleButton. It will perform the action of the StaysOpen="False" and the click of the ToggleButton causing the Popup to close and then open again. – deloreyk Jan 26 '15 at 21:05

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