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The answer I found at: How to rotate an image to a particular angle in Windows Phone 7 Silverlight Application? is close to what I am looking for.

My question is - how can I do this if the image is part of a style? The image is basically an arrow pointing in the direction of movement (track).

<Style x:Key="MyBoatPushPinStyle" TargetType="maps:Pushpin">
    <Setter Property="Template">
        <Setter.Value>
            <ControlTemplate>
                <Image x:Name="MyBoatIcon" 
                       Source="Resources/Icons/myboat.png" 
                       Stretch="None">
                    <Image.RenderTransform>
                        <RotateTransform Angle="0" />
                    </Image.RenderTransform>
                </Image>
            </ControlTemplate>
        </Setter.Value>
    </Setter>
</Style>

The style is applied to a MapLayer:

<maps:MapLayer x:Name="LocationLayer">
    <maps:Pushpin Style="{StaticResource MyBoatPushPinStyle}"  
    Location="{Binding CurrentLocation}" />
</maps:MapLayer>

What I can't figure is how to reference the image within the style, if that can actually be done.

Something like:

((RotateTransform)REFERENCE_TO_IMAGE.RenderTransform).Angle = _currentTrack;
share|improve this question
up vote 0 down vote accepted

Try this:

<maps:MapLayer x:Name="LocationLayer">
    <maps:Pushpin x:Name="PushpinLayer" Style="{StaticResource MyBoatPushPinStyle}" Location="{Binding CurrentLocation}" />
</maps:MapLayer>

Image a = FindFirstElementInVisualTree<Image>(PushpinLayer);
if (a != null)
    ((RotateTransform)a.RenderTransform).Angle = 90;

private T FindFirstElementInVisualTree<T>(DependencyObject parentElement) where T : DependencyObject
{
    var count = VisualTreeHelper.GetChildrenCount(parentElement);
    if (count == 0)
        return null;

    for (int i = 0; i < count; i++)
    {
        var child = VisualTreeHelper.GetChild(parentElement, i);

        if (child != null && child is T)
            return (T)child;

        else
        {
            var result = FindFirstElementInVisualTree<T>(child);
            if (result != null)
                return result;

        }
    }
        return null;
}
share|improve this answer
    
Thanks MyKuLLSKI. Just what I needed :) – Declan Mar 8 '12 at 13:10

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