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've got a property which is a database data type (char, datetime, int, float etc...) and I want to change the control used to enter a value of the selected type. So for text values I want a TextBox and for date values I want a DatePicker.

One way I thought about doing it was to have one of each control on my form and set their Visibility using an appropriate IValueConverter implementation. I know this will work, but it would create a lot of code and doesn't feel very nice.

The other way I thought was to use a ContentPresenter and set its content with a Style and DataTriggers but I can't get it to work.

    <Style x:Key="TypedValueHelper" TargetType="{x:Type ContentPresenter}">
        <Style.Triggers>
            <DataTrigger Binding="{Binding Path=DataType}" Value="Char">
                <Setter Property="Content" Value="???"/>
            </DataTrigger>
            <DataTrigger Binding="{Binding Path=DataType}" Value="Date">
                <Setter Property="Content" Value="???"/>
            </DataTrigger>
            <DataTrigger Binding="{Binding Path=DataType}" Value="Integer">
                <Setter Property="Content" Value="???"/>
            </DataTrigger>
        </Style.Triggers>
    </Style>

If anyone can fill in my "???" or offer a better solution please do.

share|improve this question

3 Answers 3

up vote 4 down vote accepted

You could do a combination of style with setters and datatemplates. You basically have the start for it in your code, although I don't think ContentPresenter is the right control to style, since it does not have a template.

Possible something like this:

<Style x:Key="TypedValueHelper" TargetType="{x:Type ContentControl}">
        <Style.Triggers>
            <DataTrigger Binding="{Binding Path=DataType}" Value="Char">
                <Setter Property="ContentTemplate">
                    <Setter.Value>
                        <DataTemplate>
                            <TextBox Text="{Binding Path=.}" />
                        </DataTemplate>
                    </Setter.Value>
                </Setter>
            </DataTrigger>
            <DataTrigger Binding="{Binding Path=DataType}" Value="Integer">
                <Setter Property="ContentTemplate">
                    <Setter.Value>
                        <DataTemplate>
                            <Slider Maximum="100" Minimum="0" Value="{Binding Path=.}"
                                             Orientation="Horizontal" />
                        </DataTemplate>
                    </Setter.Value>
                </Setter>
            </DataTrigger>
        </Style.Triggers>
    </Style>

...

<ContentControl Content="{Binding MyValue}"
                        Style="{StaticResource TypedValueHelper}">
share|improve this answer
    
Can you share your code in the present stage? –  Tendlon May 26 '10 at 11:39
    
I'm not sure I can share my code as there are a lot of dependencies. In fact my actual problem is a little more complicated than I've let on. I'm pretty sure you're solution will work for me I've just got an issue where I'm trying to set the ContentControl's Content to {Binding} rather than {Binding MyValue} which means that WPF loads the View for my ViewModel in the content control, and recursively keeps going... –  Jon Mitchell May 26 '10 at 11:54
    
Ah I see. Did you try {Binding Path=.}? –  Tendlon May 26 '10 at 12:11
    
Just tried it and get the same problem. –  Jon Mitchell May 26 '10 at 12:26
    
Sorted! I had to set the DateType of the <DataTemplate> to the type of of the ViewModel. I guess this creates a locally scoped binding between the ViewModel type and the View I want to display. Thanks again!! –  Jon Mitchell May 26 '10 at 13:32

I would look into DataTemplates. For instance:

<DataTemplate DataType="{x:Type local:Input}">
            <local:InputControl DataContext="{Binding}" />
 </DataTemplate>

 <DataTemplate DataType="{x:Type data:VideoData}">
                <local:VideoControl DataContext="{Binding}"></local:VideoControl>
 </DataTemplate>
share|improve this answer
    
I'm not sure this would work for me as I'm not using an actual 'Type' to make my choice of control, I'm using an enumeration value exposed as a property on my ViewModel. –  Jon Mitchell May 26 '10 at 10:04

While the Style solution might work, the proper way to implement the dynamic content behavior would be to use DataTemplates as Sdry suggested. However, you would be using an enumeration to determine which DataTemplate to use; which essentially means you want to map a single type to multiple DataTemplates. This problem is solved by the DataTemplateSelector class, the following description is straight from MSDN:


"Typically, you create a DataTemplateSelector when you have more than one DataTemplate for the same type of objects and you want to supply your own logic to choose a DataTemplate to apply based on the properties of each data object."


You dynamic content should be hosted by a ContentControl like this:

   <ContentControl Content="{Binding Path=ReferenceToYourViewModel}" ContentTemplateSelector="{DynamicResource MyTemplateSelector}"/>

The Implementation of MyTemplateSelector:

    public class MyTemplateSelector: DataTemplateSelector
{
    public override DataTemplate SelectTemplate(object item, DependencyObject container)
    {
        FrameworkElement elem = container as FrameworkElement;
        if(elem == null)
        {
            return null;
        }
        if (item == null || !(item is YourViewModel))
        {
            throw new ApplicationException();
        }
        if ((item as YourViewModel).DataType == DataType.Char)
        {
            return elem.FindResource("CharDataTemplate") as DataTemplate;
        }
        if ((item as YourViewModel).DataType == DataType.Date)
        {
            return elem.FindResource("DateDataTemplate") as DataTemplate;
        }
        if ((item as YourViewModel).DataType == DataType.Integer)
        {
            return elem.FindResource("IntegerDataTemplate") as DataTemplate;
        }
        throw new ApplicationException();
    }
}

Then as you would expect, here are the DataTemplates to pick from:

   <DataTemplate x:Key="CharDataTemplate" DataType="{x:Type YourViewModel}">Put Your Xaml Here</DataTemplate>
   <DataTemplate x:Key="DateDataTemplate" DataType="{x:Type YourViewModel}">Put Your Xaml Here</DataTemplate>
   <DataTemplate x:Key="IntegerDataTemplate" DataType="{x:Type YourViewModel}">Put Your Xaml Here</DataTemplate>

With this, the appropriate DataTemplate will be chosen based on the DataType Property of your View Model. Which in my opinion is a lot cleaner than using Visibility or Styles.

share|improve this answer

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.