2

I am considerably new to MVVM implementation. This might sound like a repetitive question but there is nothing that I could find that would help me understand better with my knowledge which is basic. I have a Model class with members as shown here:

public class Model
{
    public string Name { get; set; }
    public int Age { get; set; }
    public List<Model> Children { get; set; }
}

I have wrapped this model class in a view model but with ObservableCollection in place of List.

public class ViewModel
{
    private Model model;
    public ViewModel()
    {
        model = new Model();
    }
    //getters and setters for both Name and Age

    public ObservableCollection<ViewModel> Children
    {
        //how to convert List<Model> to ObservableCollection<ViewModel> here?
    }
}

I definitely do not want to expose my Model class to the view which is why I need to create an ObservableCollection of the VM class. Not sure how to achieve this though. Any help appreciated.

  • If I'm not mistaken, you want to return the model's Children as an ObservableCollection of another type? Other than the conversion between Model and ViewModel, the constructor for ObservableCollections can take a List as parameter, e.g. return new ObservableCollection<ViewModel>(*model.Children as List<ViewModel>*);. Note that you need to do conversion of Model to ViewModel first. – Keyur PATEL Sep 28 '17 at 2:13
  • If I'm not mistaken, you want to return the model's Children as an ObservableCollection of another type? Yes.That's exactly what I am looking to achieve. ObservableCollections does take a List as a parameter but the List should be of the same type. In my case they aren't.. – Akshatha Sep 28 '17 at 2:18
  • Well, then there would be no other way than to create a function to convert. For example, in your Model class, you can have a public ViewModel converted { get { *perform some conversion here* } }, and then to convert the whole list you can simply do return new ObservableCollection<ViewModel>(model.Children.Select(m => m.converted)); – Keyur PATEL Sep 28 '17 at 2:21
  • 1
    You wrote you "definitely do not want to expose my Model class to the view". Now you have a bunch of view model code to achieve this goal, but still have the problem that changes to the Model's Children collection won't be notified about. I'd suggest to use a far more pragmatic approach and 1.) implement INotifyPropertyChanged in the Model, 2.) use ObservableCollection<Model> for the Children property and 3.) derive ViewModel from Model. Neither ObservableCollection nor INotifyPropertyChanged are view-specific, and may well be used in model classes. – Clemens Sep 28 '17 at 5:54
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    I am considerably new to MVVM implementation hey, welcome aboard, it's a great way to develop WPF applications. Been doing it myself since WPF originally came out! I definitely do not want to expose my Model class to the view yeesh. Do yourself a favor and forget about that. There's no reason to do that, and it will only cause you unnecessary work. – Will Sep 29 '17 at 16:41
5

You are probably looking for the following:

public class Model
{
    public string Name { get; set; }
    public int Age { get; set; }
    public List<Model> Children { get; set; }
}
public class ViewModel
{
    public ViewModel(Model m)
    {
        Name = m.Name;
        Age = m.Age;
        Children = new ObservableCollection<ViewModel>(m.Children.Select(md=>new ViewModel(md)));
    }

    public string Name { get; set; }
    public int Age { get; set; }
    public ObservableCollection<ViewModel> Children { get; set; }

    public Model GetModel()
    {
        return new Model()
        {
            Age = Age,
            Name = Name,
            Children = Children.Select(vm=>vm.GetModel()).ToList(),
        };
    }
}

You will note that a lot of that is boilerplate code. But if you do it this way, your model/viewmodel are completely separated, which will save you SO many problems down the line.

  • This is exactly what I was looking for!! Thank you. My main concern was to keep everything separate and not let Model class get anywhere near the view. – Akshatha Sep 28 '17 at 3:35
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    Just remember to keep everything in sync if you plan on letting it be changeable. If you add / remove items from the observable, remember to do the same to the underlying model. – Bradley Uffner Sep 28 '17 at 3:48
  • @BradleyUffner I was just about to ask about the same next. This doesn't do that, I realized. How exactly do I update the Model on changes to the VM? – Akshatha Sep 28 '17 at 4:13
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    With this, you wouldn't update the model - you'd just get a new one from the VM. You definitely need to do this at some point - when you do that is up to you - it depends on how you are using this. – MineR Sep 28 '17 at 4:15
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    You just have to add code to the vm. For example, in the setter for the vm name property, update model.name too. For the observable list, you can subscribe to its event, and change the model's list accordingly – Bradley Uffner Sep 28 '17 at 4:16

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