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I want to use the SaveFileDialog in the code behind to write a file using data that is contained in the ViewModel. The XAML class I am working with is populated by a selection made in a listbox in the parent class:

    <Views:ChildView DataContext="{Binding Path=SelectedItem, ElementName=childrenListbox}"></Views:ChildView >

Then, within the ChildView XAML file I am able to freely access properties/methods of the ChildViewModel as expected. However, I don't know how to access them from the code behind. I have a "Save File" button

    <Button Content="Save File" Click="Button_Click"></Button>

whose event is handled in the code behind:

    private void Button_Click(object sender, RoutedEventArgs e)
    {
        Microsoft.Win32.SaveFileDialog dlg = new Microsoft.Win32.SaveFileDialog();
        dlg.FileName = "Document";
        dlg.DefaultExt = ".txt";
        dlg.Filter = "Text documents (.txt)|*.txt";

        Nullable<bool> result = dlg.ShowDialog();

        if (result == true)
        {
            string filename = dlg.FileName;
            //Here I would like to call the SaveFile function in ChildViewModel
        }
    }

I have tried looking through all the available properties but I cannot find a way to access the instance of ChildViewModel that I am working with. This question might have a simple solution, but I am not familiar with using the code-behind because I am making my first guild and I have been using the MVVM approach. I will strongly appreciate any answers that help me find a working solution. Also, please feel free to criticize me for using the code behind with MVVM if there is a way to avoid it and get a SaveFileDialog by only using XAML (then I could easily do the file saving within the ModelView).

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There won't be a XAML-only way of doing this, but you can add the reference to Microsoft.Win32 to your ViewModel, bind the button to a Command in that same ViewModel (instead of the click event), and do the save in the ViewModel itself. –  Wonko the Sane Jul 25 '12 at 17:51
    
It is considered bad to do things in the codebehind. Please have a look at my answer. –  Mare Infinitus Jul 25 '12 at 17:51
    
@WonkotheSane Please have a look at my answer on that. –  Mare Infinitus Jul 25 '12 at 17:51

3 Answers 3

up vote 2 down vote accepted

Not sure where you are setting your ViewModel because you did not show the code for it, but usually it sits on the DataContext property of your root element. So you could just cast it like that.

var viewModel = (ChildViewModel)this.DataContext;
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That looks like it does what I need. Thank you. –  sebo Jul 25 '12 at 17:49

You can try a different approach:

Get a command for your button

public abstract class MyCommandBase : ICommand
{
    public abstract bool CanExecute(object o);
    public abstract void Execute(object o);

    public MyViewModel ViewModel { get; set; }

    public event EventHandler CanExecuteChanged
    {
        add { CommandManager.RequerySuggested += value; }
        remove { CommandManager.RequerySuggested -= value; }
    }
}


public class ButtonClickCommand : MyCommandBase
{
    public ButtonClickCommand(MyViewModel vm)
    {
        base.ViewModel = vm;
    }

    public override bool CanExecute(object o)
    {
        return true;
    }

    public override void Execute(object o)
    {
        var context = this.ViewModel as MyViewModel;
        MessageBox.Show("Button was clicked for" + context.Id);
    }
}

Build an instance of that command in your ViewModel and make a public property for that.

And in your XAML it is just

<Button Focusable="False" Command="{Binding CmdClickMyButton}" HorizontalAlignment="Stretch" VerticalAlignment="Stretch" Margin="0">

That way, when a button is clicked, you are directly back in your ViewModel, having all information you need. Saving data to a file is a nonissue.

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Good answer, although I am not entirely sold on your implementation of ButtonClickCommand (for instance, always setting CanExecute to true, or requiring a ViewModel instance). I generally prefer the Josh Smith approach. –  Wonko the Sane Jul 25 '12 at 18:00
    
this is an example. I wanted it to bring it as close to productive as possible. But I like the linked approach also, but in my example it would be too much I think. Just want to get OP out of the code-behind. ;) –  Mare Infinitus Jul 25 '12 at 18:02
    
I will try switching over to your solution to avoid using the code behind. –  sebo Jul 25 '12 at 18:04
    
Fair enough, and the link to Josh Smith's code is here for the OP to look at, too. :) –  Wonko the Sane Jul 25 '12 at 18:05
1  
If this was helpful for you, feel free and accept it as answer –  Mare Infinitus Jul 26 '12 at 7:32

Maybe this could help:

((YourViewModelClass)YourControl.DataContext).SaveFile();

Regards

EDIT:

Acording to your example:

((ChildViewModel)ChildView.DataContext).SaveFile();

if you want this code in the ChildView's code-behind it would be:

((ChildViewModel)this.DataContext).SaveFile();

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What would "YourControl" be? The SaveFile() is not a static method so I need to use the correct instance of my view model class. –  sebo Jul 25 '12 at 17:44
    
Yes, the DataContext property gets the instance of the viewModel you are currently using. The control is, in your case, ChildView. I wiil edit my answer –  Dante Jul 25 '12 at 17:46
    
Ok that works, sorry for asking for such detail, I'm new to C#/XAML/WPF. –  sebo Jul 25 '12 at 17:50
    
Dont worry, glad it helped. –  Dante Jul 25 '12 at 17:52

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