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 have a xaml file which I want to use as DesignData (with design-time creatable types). I also want to use XAML 2009 features in it, however Visual Studio does not seem to accept it, complaining that the attributes I want to use do not exist in the target namespace.

Here is what my xaml file looks like:

<my:ViewModel 
    xmlns="http://schemas.microsoft.com/winfx/2006/xaml/presentation"
    xmlns:x="http://schemas.microsoft.com/winfx/2006/xaml"
    xmlns:scg="clr-namespace:System.Collections.Generic;assembly=mscorlib"
    xmlns:my="clr-namespace:MyCompany"
>
    <my:ViewModel.ViewCollection>
        <!-- That part does not work, because it tells me that FactoryMethod and Arguments could not be found in the namespace for prefix 'x'. -->
        <my:BusinessObjectView x:FactoryMethod="my:BusinessObjectView.Convert">
            <x:Arguments>
                <my:BusinessObject />
            </x:Arguments>
        </my:BusinessObjectView>
    </my:ViewModel.ViewCollection>
    <my:ViewModel.BoCollection>
        <!-- Even though the x:TypeArguments syntax for defining objects only appears in XAML 2009, that part works fine - probably because the TypeArguments attribute already existed in that namespace. -->
        <scg:List x:TypeArguments="my:BusinessObject">
            <my:BusinessObject />
        </scg:List>
    </vm:ViewModel.BoCollection>
</my:ViewModel>

And here is the fragment in the XML project file that describes the build action:

<DesignDataWithDesignTimeCreatableTypes Include="Path/To/File.xaml">
  <SubType>Designer</SubType>
  <Generator>MSBuild:Compile</Generator>
</DesignDataWithDesignTimeCreatableTypes>

So, what is the problem? Is it the namespace prefix? (In which case, which one should I use for XAML 2009?) Is it the build action? Is my whole approach flawed?

share|improve this question
add comment

1 Answer

"Loose XAML file" is a concept which is orthogonal to the concept of XAML 2009. Loose XAML file is a XAML-only (no code behind) file which is loaded at run-time. http://wpf.2000things.com/2010/10/20/100-loose-xaml-files/ XAML 2009 is an version of the XAML language and a set of corresponding schemas.

To make .xaml file "loose" you just need to stop it being compiled (in file properties). To load loose .xaml file you need to use XamlReader.Load Method http://msdn.microsoft.com/en-us/library/system.windows.markup.xamlreader.load.aspx http://www.c-sharpcorner.com/uploadfile/37db1d/understanding-uncompiled-xaml-to-design-dynamic-ui-in-wpf/ Strangely it seems that XAML2009 files still use the 2006 schemas.

share|improve this answer
    
The thing is, I am not talking about XAML that will be used to define the UI of the application - I want to use that XAML file as Design Data, which is only loaded by Visual Studio, never at runtime. I cannot modify Visual Studio in the way that it loads my file. But you are right - the concepts are orthogonal. –  Jean Hominal Nov 10 '12 at 17:47
    
"I am not talking about XAML that will be used to define the UI of the application". Neither am I. XAML is a general purpose serialization format. Is your problem with referencing a XAML2009 file in a normal compiled XAML file as the DesignData? If so, are you specifying it like mc:Ignorable="d" d:DataContext="{d:DesignData source=./loose.xaml}"? –  Ark-kun Nov 10 '12 at 17:54
    
It has been more than a year since I last worked on the project that had that. If I remember correctly, I think that there was no problem in referencing and using the design data - the issue was that the Visual Studio XAML editor was insistent in highlighting perceived errors in perfectly valid XAML 2009 markup. –  Jean Hominal Nov 10 '12 at 21:50
add comment

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.