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I have a question about visual state management of PhoneApplicationPage. Basically, can one use VisualStateManager approach to set states of the page itself? In the end, it inherits the Control class, so this stuff should be applicable.

I'm asking because I've tried and failed. Here's my code:

<phone:PhoneApplicationPage 
x:Class="Encountered.MainPage"
xmlns="http://schemas.microsoft.com/winfx/2006/xaml/presentation"
xmlns:x="http://schemas.microsoft.com/winfx/2006/xaml"
xmlns:phone="clr-namespace:Microsoft.Phone.Controls;assembly=Microsoft.Phone"
xmlns:shell="clr-namespace:Microsoft.Phone.Shell;assembly=Microsoft.Phone"
xmlns:d="http://schemas.microsoft.com/expression/blend/2008"
xmlns:mc="http://schemas.openxmlformats.org/markup-compatibility/2006"
mc:Ignorable="d" d:DesignWidth="480" d:DesignHeight="768"
FontFamily="{StaticResource PhoneFontFamilyNormal}"
FontSize="{StaticResource PhoneFontSizeNormal}"
Foreground="{StaticResource PhoneForegroundBrush}"
SupportedOrientations="Portrait" Orientation="Portrait"
shell:SystemTray.IsVisible="True">

<VisualStateManager.VisualStateGroups>
    <VisualStateGroup x:Name="Common">
        <VisualState x:Name="State1">
            <Storyboard>
                <DoubleAnimation Storyboard.TargetName="button" Storyboard.TargetProperty="(UIElement.Opacity)" To="1" Duration="0"/>
            </Storyboard>
        </VisualState>
        <VisualState x:Name="State2">
            <Storyboard>
                <DoubleAnimation Storyboard.TargetName="button" Storyboard.TargetProperty="(UIElement.Opacity)" To="0" Duration="0"/>
            </Storyboard>
        </VisualState>
    </VisualStateGroup>
</VisualStateManager.VisualStateGroups>

<StackPanel Orientation="Vertical">
    <HyperlinkButton x:Name="button" NavigateUri="/Views/EditPage.xaml" Content="Go"/>
    <Button Click="Button_Click">state</Button>
</StackPanel>


</phone:PhoneApplicationPage>

In the code-behind:

public partial class MainPage : PhoneApplicationPage
    {
        // Constructor
        public MainPage()
        {
            InitializeComponent();
            VisualStateManager.GoToState(this, "State1", true);
        }

        private void Button_Click(object sender, RoutedEventArgs e)
        {
            VisualStateManager.GoToState(this, "State2", true);
        }
    }

Any ideas what could be wrong?

share|improve this question
    
Try a similar example from the post below stackoverflow.com/questions/7139099/… –  Somnath Sep 24 '12 at 11:16

1 Answer 1

up vote 0 down vote accepted

The VisualStateManager enables you to specify when a control enters a specific state.

So, simply wrap all in a grid :

<Grid>
    <VisualStateManager.VisualStateGroups>
    <VisualStateGroup x:Name="Common">
        <VisualState x:Name="State1">
            <Storyboard>
                <DoubleAnimation Storyboard.TargetName="button" Storyboard.TargetProperty="(UIElement.Opacity)" To="1" />
            </Storyboard>
        </VisualState>
        <VisualState x:Name="State2">
            <Storyboard>
                <DoubleAnimation Storyboard.TargetName="button" Storyboard.TargetProperty="(UIElement.Opacity)" To="0" />
            </Storyboard>
        </VisualState>
    </VisualStateGroup>
</VisualStateManager.VisualStateGroups>

<StackPanel Orientation="Vertical">
    <HyperlinkButton x:Name="button" NavigateUri="/Views/EditPage.xaml" Content="Go" />
    <Button Click="Button_Click" >state</Button>
</StackPanel>
</Grid>
share|improve this answer
    
Yep, I've also found that putting VisualStateManager to some child entity of the page make things work, i.e. you can say VisualStateManager.GoToState(phone_app_page, "state", true). However, I find this very misleading. It doesn't work when you set property on a Control instance (what PhoneApplicationPage is), but works when you set it to a non-Control (Grid inherits Panel, not Control). Has anyone any idea about logic behind this design? –  Haspemulator Sep 24 '12 at 12:58
    
Okay, this answer at least gives the workaround, so I accept it. However, it would be nice to have some explanation of some reason behind this logic. –  Haspemulator Sep 25 '12 at 18:32

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