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 am using the MVVM model with a dynamic field generator, where the field is pulled from the database, done this way because different types of forms require different fields (TextBox/TextBlock, ComboBox, etc.). The problem is I'm trying to retrieve a value from a dictionary, to display in a TextBlock for the form, but I'm not sure how to bind the retrieved Key so I can display the value.

Currently, I am doing the following:

 TextBlock textBlock = new TextBlock();
 textBlock.SetBinding(TextBlock.TextProperty, createFieldBinding(myPropertyName);

With the following binding method:

 private Binding createFieldBinding(string fieldName) {
      Binding binding = new Binding(fieldName);
      binding.Source = this.DataContext;
      binding.UpdateSourceTrigger = UpdateSourceTrigger.LostFocus;
      return binding;
 }

Where I pass something through like Score, which maps to a Score property in the ViewModel, but how would I bind to a Dictionary Key to retrieve its Value?

I want to be able to bind to something like myDictionaryProperty[myDictionaryKey], if that is possible.

Example: The below generates the PlayerScore for Player with ID of 1. Where PlayerScore is a Dictionary<int, int> and PlayerID is an int.

 <TextBlock Name="textBlockA" Text="{Binding PlayerScore[1]} />
share|improve this question
1  
You would have to create a MultiBinding, as explained in the answers to this question asked today. –  Clemens Dec 10 '12 at 14:36
    
I don't know MVVM. I just use Source to the Dictionary and Path = Value –  Blam Dec 10 '12 at 15:43
    
@Clemens Awesome, thanks for that! Took me a while to tinker for what I wanted, but that solution works for me. –  Bob. Dec 10 '12 at 17:16
add comment

2 Answers

up vote 2 down vote accepted

Using this solution provided by @Clemens, I was able to build my own DictionaryItemConverter, based on the data types for my Dictionary, and create a multi-binding method that would bind the Key and the Dictionary together.

Converter:

 public class DictionaryItemConverter : IMultiValueConverter {
      public object Convert(object[] values, Type targetType, object parameter, System.Globalization.CultureInfo culture) {
           if(values != null && values.Length >= 2) {
                var myDict = values[0] as IDictionary;
                if(values[1] is string) {
                     var myKey = values[1] as string;
                     if(myDict != null && myKey != null) {
                          //the automatic conversion from Uri to string doesn't work
                          //return myDict[myKey];
                          return myDict[myKey].ToString();
                     }
                }
                else {
                     long? myKey = values[1] as long?;
                     if(myDict != null && myKey != null) {
                          //the automatic conversion from Uri to string doesn't work
                          //return myDict[myKey];
                          return myDict[myKey].ToString();
                     }
                }
           }

           return Binding.DoNothing;
      }

      public object[] ConvertBack(object value, Type[] targetTypes, object parameter, System.Globalization.CultureInfo culture) {
           throw new NotSupportedException();
      }
 }

Multi-Bind Method:

 private MultiBinding createFieldMultiBinding(string fieldName) {
      // Create the multi-binding
      MultiBinding mbBinding = new MultiBinding();
      // Create the dictionary binding
      Binding bDictionary = new Binding(fieldName + "List");
      bDictionary.Source = this.DataContext;
      // Create the key binding
      Binding bKey = new Binding(fieldName);
      bKey.Source = this.DataContext;
      // Set the multi-binding converter
      mbBinding.Converter = new DictionaryItemConverter();
      // Add the bindings to the multi-binding
      mbBinding.Bindings.Add(bDictionary);
      mbBinding.Bindings.Add(bKey);

      return mbBinding;
 }
share|improve this answer
add comment

Binding to indexed properties is possible and uses the same notation as C#, just like you wrote:

<TextBlock Name="textBlockA" Text="{Binding PlayerScore[1]}" />

The string you pass to "createFieldBinding" is the property path. If you set the source as the dictionary, you just need to pass the indexer part, like "[1]", as if you had done like this in xaml:

<TextBlock Name="textBlockA" Text="{Binding [1]}" />

See this

share|improve this answer
    
What about if 1 is a property? –  Bob. Dec 10 '12 at 16:46
    
If you set the source correctly and want to bind to a property named "1", just use "{Binding 1}". If "1" is a property of the object returned by the index, then you just append it to the path "{Binding [MyIndex].1}" (assuming the binding source is a dictionary or a object which implements indexer). Note that in C# identifiers cannot start with a numeric character msdn.microsoft.com/en-us/library/aa664670.aspx –  Arthur Nunes Dec 10 '12 at 16:59
add comment

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.