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Explanation: I have to get FolderBrowserDialog Box once I click the browse button. And In FolderBrowserDialog Box,if I select any folder and click ok,that particular folderpath along with foldername should be shown in the textbox which is beside the browse button....But I didn't get anything once I click Browse button. Please check my code and correct me...

View.xaml :

<Window....  xmlns:VM="clr-namespace:myproject.myViewModel"
...  >
<Window.DataContext><VM:myViewModel/>
<Grid>...
<TextBlock  Text="Folder to save files"  VerticalAlignment="Center" />
<TextBox   Text="{Binding Path=FoldernameWithPath  , UpdateSourceTrigger=PropertyChanged, Mode=TwoWay}"   Height="26"    IsReadOnly="True"  VerticalContentAlignment="Center"    Width="150"    />
 <Button      Content="Browse"    Height="26" VerticalAlignment="Bottom"  MinWidth="45"  Command="{Binding OpenFolderCommand}" />
</Grid>
</window> 

ViewModel.cs

    public ICommand OpenFolderCommand
    {
        get => new RelayCommand(a => this.OpenFolder(), p => CanOpenFolder());
    }
    private string _foldernameWithPath;
    public string FoldernameWithPath
    {
        get { return _foldernameWithPath; }
        set
        {
            if (value == _foldernameWithPath)
            {
                return;
            }
            else
            {
                _foldernameWithPath = value;
                OnPropertyChanged("FoldernameWithPath");
            }
        }
    }
    public bool CanOpenFolder()
    {
        return true;
    }
    private void OpenFolder()
    {
        FolderBrowserDialog openFolderDialog = new FolderBrowserDialog();
        if (openFolderDialog.ShowDialog() == System.Windows.Forms.DialogResult.OK && OpenFolderCommand.CanExecute(openFolderDialog.SelectedPath))
        {
            OpenFolderCommand.Execute(openFolderDialog.SelectedPath);
            FoldernameWithPath = openFolderDialog.SelectedPath;
        }
    }
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  • 1
    Try leaving out your CanOpenFolder. I dont see sense to validate this command parameter. When i try your code, button is disabled because of this.
    – Malior
    Jan 8, 2019 at 9:50
  • Now I edited Viewmodel.cs ...But still I'm not getting
    – GJPD
    Jan 8, 2019 at 9:57
  • Remove 'CommandParameter="{x:Type views:myView}' this and then try,
    – fhnaseer
    Jan 8, 2019 at 9:59
  • ok I removed..But stil not getting expected output
    – GJPD
    Jan 8, 2019 at 10:06
  • Faisal is right, there is no need for the CommandParameter, but I don't think, that this is the reason for the behavior. I would try to set the command property as public get and private set and instanciate it in constructor or initialize method.
    – c0d3b34n
    Jan 8, 2019 at 10:07

3 Answers 3

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You should not call the command from the delegated method (OpenFolder()). The command does nothing else than to execute the delegated method when Execute is called, which is done automatically when you click the button.

Also ICommand.CanExecute() is typically called automatically by WPF itself and based on the result in only enables, resp disables the button. You rarely call the CanExecute by yourself in ViewModel. In your case, you want the button always enabled, so you can skip CanExecute, or use p => true expression.

This should work

xaml:

<TextBox Text="{Binding Path=FoldernameWithPath}" IsReadOnly="True" />
<Button Content="Browse"  Command="{Binding OpenFolderCommand}" />

viewmodel:

public ICommand OpenFolderCommand {get;} = new RelayCommand(p => OpenFolder());

private string _foldernameWithPath;
public string FoldernameWithPath
{
    get { return _foldernameWithPath; }
    set
    {
        if (value == _foldernameWithPath) return
        _foldernameWithPath = value;
        OnPropertyChanged("FoldernameWithPath");
    }
}

public void OpenFolder()
{
   FolderBrowserDialog openFolderDialog = new FolderBrowserDialog();
   if (openFolderDialog.ShowDialog() == System.Windows.Forms.DialogResult.OK)
   {
      FoldernameWithPath = openFolderDialog.SelectedPath;
   }
}
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0

Do the following changes,

In View.xaml

<Button Content="Browse" Command="{Binding OpenFolderCommand}"/>

In ViewModel.cs

public bool CanOpenFolder()
{
    return true;
}

private void OpenFolder()
{
    FolderBrowserDialog openFolderDialog = new FolderBrowserDialog();
    if (openFolderDialog.ShowDialog() == System.Windows.Forms.DialogResult.OK && OpenFolderCommand.CanExecute(openFolderDialog.SelectedPath))
    {
        //OpenFolderCommand.Execute(openFolderDialog.SelectedPath);
        FoldernameWithPath = openFolderDialog.SelectedPath;
    }
}
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  • I tested this and it works. You had a bug in your code. Commands calls itself again and again,
    – fhnaseer
    Jan 8, 2019 at 10:13
  • That's right, but the call is only after ShowDialog() so that the dialog window anyway should open first. And that doesn't as he wrote.
    – c0d3b34n
    Jan 8, 2019 at 10:17
  • I removed 'CommandParameter="{x:Type views:myView}' from the view. I believe he was getting some error due to this,
    – fhnaseer
    Jan 8, 2019 at 10:22
  • Don't think so. This is purely a typeof(myView) so that the command parameter (object) takes this Type and should not result in an error because he don't use it in any case.
    – c0d3b34n
    Jan 8, 2019 at 10:29
  • Yeah... It works for me but how to make the "selected folderpath along with foldername" visible in textbox which is beside browse button @Faisal Hafeez
    – GJPD
    Jan 15, 2019 at 11:18
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I would write the command like this:

public ICommand OpenFolderCommand { get; private set; }
public MyViewModel() 
{
    this.OpenFolderCommand = new RelayCommand(a=> this.OpenFolder(),p=> CanOpenFolder());
}

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