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I have a ObservableCollection<Dictionary> and want to bind it to a DataGrid.

ObservableDictionary<String,Object> NewRecord1 = new ObservableDictionary<string,object>();

Dictionary<String,Object> Record1 = new Dictionary<string,object>();
Record1.Add("FirstName", "FName1");
Record1.Add("LastName", "LName1");
Record1.Add("Age", "32");

DictRecords.Add(Record1);

Dictionary<String, Object> Record2 = new Dictionary<string, object>();
NewRecord2.Add("FirstName", "FName2");
NewRecord2.Add("LastName", "LName2");
NewRecord2.Add("Age", "42");

DictRecords.Add(Record2);

I wanted the keys to become the header of the DataGrid and the values of each Dictionary item to be the rows. Setting the ItemsSource does not work.

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1  
DataGrid simply doesn't support this. If you need dynamic columns there are other ways. –  Henk Holterman Jan 5 '13 at 11:06
    
@HenkHolterman I do need dynamic columns. Can you please point me to other ways of doing this? –  Manoj Jan 5 '13 at 11:09
    
In your example, it looks like you're adding persons to the grid. I assume you need dynamic columns because you'll need to display other things than persons in the same grid some other time? If so, would it be acceptable to make a Person class, and similar classes for all other items you need to display (instead of using Dictionary<>)? –  Sphinxxx Jan 5 '13 at 13:20
    
@Sphinxxx Yes you are right. Actually it would be test results - multiple tests are run in sequence and currently running test result would be shown in the data grid. I considered adding a result class for every test result. I am confused at how I would update the data binding based on the test being run. I did not want to add a select statement in the view to select the appropriate object to bind - as this would require me to update it every time we add a new test. i thought this was not a good design. Any better way of handling this? –  Manoj Jan 5 '13 at 13:52
    
Would you really need different classes for different tests? Could you update your post by adding an example of such a class? –  Sphinxxx Jan 5 '13 at 14:03
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1 Answer

up vote 11 down vote accepted

You could use a bindable dynamic dictionary. This will expose each dictionary entry as a property.

/// <summary>
/// Bindable dynamic dictionary.
/// </summary>
public sealed class BindableDynamicDictionary : DynamicObject, INotifyPropertyChanged
{
    /// <summary>
    /// The internal dictionary.
    /// </summary>
    private readonly Dictionary<string, object> _dictionary;

    /// <summary>
    /// Creates a new BindableDynamicDictionary with an empty internal dictionary.
    /// </summary>
    public BindableDynamicDictionary()
    {
        _dictionary = new Dictionary<string, object>();
    }

    /// <summary>
    /// Copies the contents of the given dictionary to initilize the internal dictionary.
    /// </summary>
    /// <param name="source"></param>
    public BindableDynamicDictionary(IDictionary<string, object> source)
    {
        _dictionary = new Dictionary<string, object>(source);
    }
    /// <summary>
    /// You can still use this as a dictionary.
    /// </summary>
    /// <param name="key"></param>
    /// <returns></returns>
    public object this[string key]
    {
        get
        {
            return _dictionary[key];
        }
        set
        {
            _dictionary[key] = value;
            RaisePropertyChanged(key);
        }
    }

    /// <summary>
    /// This allows you to get properties dynamically.
    /// </summary>
    /// <param name="binder"></param>
    /// <param name="result"></param>
    /// <returns></returns>
    public override bool TryGetMember(GetMemberBinder binder, out object result)
    {
        return _dictionary.TryGetValue(binder.Name, out result);
    }

    /// <summary>
    /// This allows you to set properties dynamically.
    /// </summary>
    /// <param name="binder"></param>
    /// <param name="value"></param>
    /// <returns></returns>
    public override bool TrySetMember(SetMemberBinder binder, object value)
    {
        _dictionary[binder.Name] = value;
        RaisePropertyChanged(binder.Name);
        return true;
    }

    /// <summary>
    /// This is used to list the current dynamic members.
    /// </summary>
    /// <returns></returns>
    public override IEnumerable<string> GetDynamicMemberNames()
    {
        return _dictionary.Keys;
    }

    public event PropertyChangedEventHandler PropertyChanged;

    private void RaisePropertyChanged(string propertyName)
    {
        var propChange = PropertyChanged;
        if (propChange == null) return;
        propChange(this, new PropertyChangedEventArgs(propertyName));
    }
}

Then you can use it like this:

    private void testButton1_Click(object sender, RoutedEventArgs e)
    {
        // Creating a dynamic dictionary.
        var dd = new BindableDynamicDictionary();

        //access like any dictionary
        dd["Age"] = 32;

        //or as a dynamic
        dynamic person = dd;

        // Adding new dynamic properties.  
        // The TrySetMember method is called.
        person.FirstName = "Alan";
        person.LastName = "Evans";

        //hacky for short example, should have a view model and use datacontext
        var collection = new ObservableCollection<object>();
        collection.Add(person);
        dataGrid1.ItemsSource = collection;
    }

Datagrid needs custom code for building the columns up:

XAML:

<DataGrid AutoGenerateColumns="True" Name="dataGrid1" AutoGeneratedColumns="dataGrid1_AutoGeneratedColumns" />

AutoGeneratedColumns event:

    private void dataGrid1_AutoGeneratedColumns(object sender, EventArgs e)
    {
        var dg = sender as DataGrid;
        var first = dg.ItemsSource.Cast<object>().FirstOrDefault() as DynamicObject;
        if (first == null) return;
        var names = first.GetDynamicMemberNames();
        foreach(var name in names)
        {
            dg.Columns.Add(new DataGridTextColumn { Header = name, Binding = new Binding(name) });            
        }            
    }
share|improve this answer
    
BindableDynamicDictionary is perfect for my requirement. Thanks for the example with comments. –  Manoj Jan 5 '13 at 15:13
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