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 have a DataGrid, bound to Database table, I need to get the content of selected row in DataGrid, for example, I want to show in MessageBox content of selected row.

Example of DataGrid:

enter image description here

So if I select the second row, my MessageBox has to show something like: 646 Jim Biology.

Thanks.

share|improve this question

8 Answers 8

up vote 55 down vote accepted

You can use the SelectedItem property to get the currently selected object, which you can then cast into the correct type. For instance if your DataGrid is bound to a collection of Customer objects you could do this:

Customer customer = (Customer)myDataGrid.SelectedItem;

Alternatively you can bind SelectedItem to your source class or ViewModel.

<Grid DataContext="MyViewModel">
    <DataGrid ItemsSource="{Binding Path=Customers}"
              SelectedItem="{Binding Path=SelectedCustomer, Mode=TwoWay}"/>
</Grid>    
share|improve this answer
    
Thank you, the first one works great! –  Mike B. Oct 12 '10 at 10:49
    
Thank you, the second one works great, too! :) –  Sam Nov 25 '10 at 10:09
    
The second one is exactly what I was looking for. Thanks! –  James Sep 11 '14 at 17:44
public IEnumerable<DataGridRow> GetDataGridRows(DataGrid grid)
{
    var itemsSource = grid.ItemsSource as IEnumerable;
    if (null == itemsSource) yield return null;
    foreach (var item in itemsSource)
    {
        var row = grid.ItemContainerGenerator.ContainerFromItem(item) as DataGridRow;
        if (null != row) yield return row;
    }
}

private void DataGrid_Details_SelectionChanged(object sender, SelectionChangedEventArgs e)
{
    try
    {           
        var row_list = GetDataGridRows(DataGrid_Details);
        foreach (DataGridRow single_row in row_lis)
        {
            if (single_row.IsSelected == true)
            {
                MessageBox.Show("the row no."+single_row .GetIndex ().ToString ()+ " is selected!");
            }
        }

    }
    catch { }
}
share|improve this answer

If you're using the MVVM pattern you can bind a SelectedRecord property of your VM with SelectedItem of the datagrid, this way you always have the selectedvalue in you VM. Otherwise you should use the SelectedIndex property of the datagrid.

share|improve this answer
    
I don't use MVVM, I just begin with WPF/C#/.NET. If I write «ContentDataGrid.SelectedIndex», I get index of selected row in DataGrid, and I need not index, but real value, such as «646 Jim Biology». So how can I get it? –  Mike B. Oct 12 '10 at 10:34
    
You should consider to use a binded object so that you can bind the SelectedItem property of the datagrid. In your case you should try to navigate to the Datagrid properties to find out if it store the selected item property. –  ema Oct 12 '10 at 11:24
    
+1. That first sentence was exactly what I was looking for! –  TarkaDaal Jul 3 '12 at 8:23
    
SelectedRecord property? I am assuming I would have to set that up myself. Any advice, or a code sample would be great –  DmainEvent Jun 20 '13 at 19:46
private void Fetching_Record_Grid_MouseDoubleClick_1(object sender, MouseButtonEventArgs e)
{
    IInputElement element = e.MouseDevice.DirectlyOver;
    if (element != null && element is FrameworkElement)
    {
        if (((FrameworkElement)element).Parent is DataGridCell)
        {
            var grid = sender as DataGrid;
            if (grid != null && grid.SelectedItems != null && grid.SelectedItems.Count == 1)
            {
                //var rowView = grid.SelectedItem as DataRowView;
                try
                {
                    Station station = (Station)grid.SelectedItem;
                    id_txt.Text =  station.StationID.Trim() ;
                    description_txt.Text =  station.Description.Trim();
                }
                catch
                {

                }
            }
        }
    }
}
share|improve this answer
1  
Can you explain your code? –  Rico Apr 3 '14 at 17:54

Well I will put similar solution that is working fine for me.

 private void DataGrid1_SelectionChanged(object sender, SelectionChangedEventArgs e)
        {
            try
            {
                if (DataGrid1.SelectedItem != null)
                {
                    if (DataGrid1.SelectedItem is YouCustomClass)
                    {
                        var row = (YouCustomClass)DataGrid1.SelectedItem;

                        if (row != null)
                        {
                            // Do something...

                            //  ButtonSaveData.IsEnabled = true;

                            //  LabelName.Content = row.Name;

                        }
                    }
                }
            }
            catch (Exception)
            {
            }
        }
share|improve this answer

if I select the second row -

 Dim jason As DataRowView


    jason = dg1.SelectedItem

    noteText.Text = jason.Item(0).ToString()

noteText will be 646. This is VB, but you get it.

share|improve this answer

This is pretty simple in this DataGrid dg and item class is populated in datagrid and listblock1 is a basic frame.

private void DataGrid_SelectionChanged(object sender, SelectionChangedEventArgs e)
    {
        try
        {
            var row_list = (Item)dg.SelectedItem;
            listblock1.Content = "You Selected: " + row_list.FirstName + " " + row_list.LastName;
        }
        catch { }

    }
    public class Item
    {
        public string FirstName { get; set; }
        public string LastName { get; set; }
    }
share|improve this answer

Just discovered this one after i tried Fara's answer but it didn't work on my project. Just drag the column from the Data Sources window, and drop to the Label or TextBox.

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.