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Why does FindName() return null in the following example?

XAML:

<Window x:Class="TestDynamicTextBox343.Window1"
    xmlns="http://schemas.microsoft.com/winfx/2006/xaml/presentation"
    xmlns:x="http://schemas.microsoft.com/winfx/2006/xaml"
    Title="Window1" Height="300" Width="300">
    <StackPanel>
        <Border >

            <DockPanel x:Name="FormBase" LastChildFill="True">

            </DockPanel>

        </Border>

        <Button Content="Save" Click="Button_Click"/>
    </StackPanel>
</Window>

Code Behind:

using System;
using System.Windows;
using System.Windows.Controls;

namespace TestDynamicTextBox343
{
    public partial class Window1 : Window
    {
        public Window1()
        {
            InitializeComponent();


            StackPanel sp = new StackPanel();
            sp.Orientation = Orientation.Horizontal;

            TextBlock textBlock = new TextBlock();
            textBlock.Text = "First Name: ";

            TextBox textBox = new TextBox();
            textBox.Name = "FirstName";
            textBox.Text = "test";

            sp.Children.Add(textBlock);
            sp.Children.Add(textBox);
            FormBase.Children.Add(sp);

        }

        private void Button_Click(object sender, RoutedEventArgs e)
        {
            TextBox tb = (TextBox)this.FindName("FirstName");
            Console.WriteLine(tb.Text);
        }
    }
}

Addendum to Answer:

Thanks a lot, Bruno, that worked well. In order not to add the same name twice, I wrap it with this:

void RegisterTextBox(string textBoxName, TextBox textBox)
{
    if ((TextBox)this.FindName(textBoxName) != null)
        this.UnregisterName(textBoxName);
    this.RegisterName(textBoxName, textBox);
}

Or if you will be registering anything other than TextBoxes, a generic version:

void RegisterControl<T>(string textBoxName, T textBox)
{
    if ((T)this.FindName(textBoxName) != null)
        this.UnregisterName(textBoxName);
    this.RegisterName(textBoxName, textBox);
}
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1 Answer 1

up vote 10 down vote accepted

This is related to WPF XAML Namescopes.

Because you add elements to parsed element trees, you need to call RegisterName.

        ...
        TextBox textBox = new TextBox();
        textBox.Name = "FirstName";
        textBox.Text = "test";

        this.RegisterName("FirstName", textBox);
        ...

Adding Elements to Parsed Element Trees

Any additions to the element tree after initial loading and processing must call the appropriate implementation of RegisterName for the class that defines the XAML namescope. Otherwise, the added object cannot be referenced by name through methods such as FindName. Merely setting a Name property (or x:Name Attribute) does not register that name into any XAML namescope. Adding a named element to an element tree that has a XAML namescope also does not register the name to the XAML namescope. Although XAML namescopes can be nested, you generally register names to the XAML namescope that exists on the root element, so that your XAML namescope location parallels the XAML namescope that would have been created in an equivalent loaded XAML page. The most common scenario for application developers is that you will use RegisterName to register names into the XAML namescope on the current root of the page. RegisterName is part of one important scenario for finding storyboards that will run as animations. For more information, see Storyboards Overview. If you call RegisterName on an element other than the root element in the same object tree, the name is still registered to the element nearest the root, as if you had called RegisterName on the root element.

share|improve this answer
1  
I didn't get if i should register all names i want to find with the FindName() function. Should I? –  Lorenzo Sciuto Nov 29 '12 at 10:12
    
@LorenzoSciuto Only those you need, and specifically the ones that will be targeted by animation. –  Sabuncu Nov 13 at 20:33

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