Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am trying to set the Icon of my menu item like this -

 <Grid>
    <Grid.Resources>
        <Image
              x:Key="ReportIconImage" Height="20" Width="20"
              Source="/Resource/flag.png"/>
        <Image
              x:Key="ReportIconImage1" Height="20" Width="20"
              Source="/Resource/flag.png"/>
    </Grid.Resources>
    <Menu Height="22" Margin="0,9,0,0" Name="menu1" VerticalAlignment="Top">
        <MenuItem Header="Menu">
            <MenuItem Header="Save" ></MenuItem>
            <MenuItem Header="Open"/>
            <MenuItem Header="Exit"/>
            <MenuItem.ItemContainerStyle>
                <Style TargetType="{x:Type MenuItem}">
                    <Setter  
                        Property="Icon" 
                        Value="{StaticResource ReportIconImage}">
                    </Setter>
                </Style>
            </MenuItem.ItemContainerStyle>
        </MenuItem>
        <MenuItem Header="Edit">
            <MenuItem Header="Undo"/>                   
            <MenuItem Header="Redo"/>                    
            <Separator/>
            <MenuItem Header="Cut"/>                    
            <MenuItem Header="Copy"/>                    
            <MenuItem  Header="Paste"/>
            <MenuItem.ItemContainerStyle>
                <Style TargetType="{x:Type MenuItem}">
                    <Setter  
                         Property="Icon" 
                         Value="{StaticResource ReportIconImage1}">
                </Setter>
                </Style>
            </MenuItem.ItemContainerStyle>
        </MenuItem>
    </Menu>
</Grid>

but the icon for only last menu item is displayed and not for first two.

enter image description here

Sample application - http://weblogs.asp.net/blogs/akjoshi/Samples/WPFMenuItemBugSample.zip

Can anyone provide the reason for this behavior and possible solutions/workarounds.

share|improve this question

3 Answers 3

up vote 7 down vote accepted

It's because you've used an Image in your resources. An Image is a control and - like any other control - can only have one parent. By default, WPF will attempt to share resources across all consumers. Thus, the last MenuItem "wins" custodial rights to the Image and the other MenuItem's aren't even allowed weekend visitations.

To rectify this, you could either set the Image to be non-shared:

<Image x:Shared="False" .../>

Or, better still, manifest your image resource as the appropriate ImageSource subclass and share that instead:

<BitmapImage x:Key="ReportIconImage" Uri="/Resource/flag.png"/>
...
<Setter Property="Icon">
    <Setter.Value>
        <Image Source="{StaticResource ReportIconImage}"/>
    </Setter.Value>
</Setter>
share|improve this answer
    
Thanks Kent, but unfortunately both the solutions doesn't work. There is no impact of first one and second one generates following exception :- Cannot add content of type 'System.Windows.Controls.Image' to an object of type 'System.Object'. Error at object 'System.Windows.Controls.Image' in markup file 'Sample;component/window1.xaml' Line 27 Position 34. –  akjoshi Jun 24 '11 at 8:57
    
In case it helps, I have uploaded the sample application reproducing this problem in the question; –  akjoshi Jun 24 '11 at 9:08
2  
@akjoshi: thanks for the repro. Switching your project to WPF 4 allows my first suggestion to work, so there must be a bug in 3.5. As for my second suggestion, that won't work because WPF is attempting to use the same Image across all MenuItems, in much the way I described in my answer. If there was an IconTemplate property, you'd use that. Unfortunately, MenuItem isn't fine-grained enough to have one, so I can only suggest overriding the Template instead. Frustrating to say the least. –  Kent Boogaart Jun 24 '11 at 13:14

Would it work to just add an icon property to each menu item directly, without using a style? Maybe I'm missing something, but this is what I've done in my apps.

<Grid>
    <Menu Height="22" Margin="0,9,0,0" Name="menu1" VerticalAlignment="Top">
        <MenuItem Header="Menu">
            <MenuItem.Icon>
                <Image Height="20" Width="20" Source="/Resourceflag.png"/>
            </MenuItem.Icon>

            <MenuItem Header="Save" ></MenuItem>
            <MenuItem Header="Open"/>
            <MenuItem Header="Exit"/>
        </MenuItem>
        <MenuItem Header="Edit">
            <MenuItem.Icon>
                <Image Height="20" Width="20" Source="/Resourceflag.png"/>
            </MenuItem.Icon>

            <MenuItem Header="Undo"/>                   
            <MenuItem Header="Redo"/>                    
            <Separator/>
            <MenuItem Header="Cut"/>                    
            <MenuItem Header="Copy"/>                    
            <MenuItem  Header="Paste"/>
        </MenuItem>
    </Menu>
</Grid>
share|improve this answer

A little late, but here is a solution that worked for me.

I used a converter to make a new image for each menuitem:

class PathToImageConverter:IValueConverter
{
    object Convert(object value, Type targetType, object parameter, CultureInfo culture)
    {
        string path = "Data/Icons/" + value + ".png";
        Image img = new Image {Source = new BitmapImage(new Uri(path, UriKind.Relative))};
        return img;
    }

    object ConvertBack(object value, Type targetType, object parameter, CultureInfo culture)
    {
        return "";
    }
}

Xaml:

   <MenuItem.ItemContainerStyle>
        <Style TargetType="MenuItem">
            <Setter Property="Icon" Value="{Binding Converter={StaticResource PathToImageConverter1}}"/>
        </Style>
    </MenuItem.ItemContainerStyle>
share|improve this answer
    
This worked great in one specific scenario, thanks. –  Dean Kuga Oct 22 '13 at 23:42

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.