4

At run time I want to dynamically build grid columns (or another display layout) in a WPF ListView. I do not know the number and names of the columns before hand.

I want to be able to do:
MyListView.ItemSource = MyDataset;
MyListView.CreateColumns();

3

You can add columns dynamically to a ListView by using Attached Properties. Check out this article on the CodeProject it explains exactly that...

WPF DynamicListView - Binding to a DataMatrix

2

From MSDN:

    MyListBox.ItemsSource = view;
    ListView myListView = new ListView();

    GridView myGridView = new GridView();
    myGridView.AllowsColumnReorder = true;
    myGridView.ColumnHeaderToolTip = "Employee Information";

    GridViewColumn gvc1 = new GridViewColumn();
    gvc1.DisplayMemberBinding = new Binding("FirstName");
    gvc1.Header = "FirstName";
    gvc1.Width = 100;
    myGridView.Columns.Add(gvc1);
    GridViewColumn gvc2 = new GridViewColumn();
    gvc2.DisplayMemberBinding = new Binding("LastName");
    gvc2.Header = "Last Name";
    gvc2.Width = 100;
    myGridView.Columns.Add(gvc2);
    GridViewColumn gvc3 = new GridViewColumn();
    gvc3.DisplayMemberBinding = new Binding("EmployeeNumber");
    gvc3.Header = "Employee No.";
    gvc3.Width = 100;
    myGridView.Columns.Add(gvc3);

    //ItemsSource is ObservableCollection of EmployeeInfo objects
    myListView.ItemsSource = new myEmployees();
    myListView.View = myGridView;
    myStackPanel.Children.Add(myListView);
1

i'd try following approach:

A) you need to have the list box display grid view - i believe this you've done already
B) define a style for GridViewColumnHeader:

        <Style TargetType="{x:Type GridViewColumnHeader}" x:Key="gridViewColumnStyle">
            <EventSetter Event="Click" Handler="OnHeaderClicked"/>
            <EventSetter Event="Loaded" Handler="OnHeaderLoaded"/>
        </Style>

in my case, i had a whole bunch of other properties set, but in the basic scenario - you'd need Loaded event. Clicked - this is useful if you want to add sorting and filtering functionality.

C) in your listview code, bind the template with your gridview:

    public MyListView()
    {
        InitializeComponent();
        GridView gridViewHeader = this.listView.View as GridView;
        System.Diagnostics.Debug.Assert(gridViewHeader != null, "Expected ListView.View should be GridView");
        if (null != gridViewHeader)
        {
            gridViewHeader.ColumnHeaderContainerStyle = (Style)this.FindResource("gridViewColumnStyle");
        }
    }

D) then in you OnHeaderLoaded handler, you can set a proper template based on the column's data

    void OnHeaderLoaded(object sender, RoutedEventArgs e)
    {
        GridViewColumnHeader header = (GridViewColumnHeader)sender;
        GridViewColumn column = header.Column;

//select and apply your data template here.

        e.Handled = true;
    }

E) I guess you'd need also to acquire ownership of ItemsSource dependency property and handle it's changed event.

            ListView.ItemsSourceProperty.AddOwner(typeof(MyListView), new PropertyMetadata(OnItemsSourceChanged));

        static void OnItemsSourceChanged(DependencyObject sender, DependencyPropertyChangedEventArgs e)
        {
            MyListView view = (MyListView)sender;
            //do reflection to get column names and types
            //and for each column, add it to your grid view:
            GridViewColumn column = new GridViewColumn();
            //set column properties here...
            view.Columns.Add(column);
        }

the GridViewColumn class itself doesn't have much properties, so you might want to add some information there using attached properties - i.e. like unique column tag - header most likely will be used for localization, and you will not relay on this one.

In general, this approach, even though quite complicated, will allow you to easily extend your list view functionality.

0

Have a DataTemplateselector to select one of the predefined templates(Of same DataType) and apply the selector on to the ListView. You can have as many DataTemplates with different columns.

1
  • I do not know the number or name of the columns before - how will this help?
    – Peter
    Sep 24 '08 at 7:38
0

You can use a DataTemplateSelector to return a DataTemplate that you have created dynamically in code. However, this is a bit tedious and more complicated than using a predefined one from XAML, but it is still possible. Have a look at this example: http://dedjo.blogspot.com/2007/03/creating-datatemplates-from-code.html

0

From experience I can recommend steering clear of dynamic data templates if you can help it... rather use the advice given here to explictly create the ListView columns, rather than trying to create a DataTemplate dynamically.

Reason is that the FrameworkElementFactory (or whatever the class name is for producing DataTemplates at run time) is somewhat cludgey to use (and is deprecated in favor of using XAML for dynamic templates) - either way you take a performance hit.

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