11

Given this code....

public class CalibrationViewModel : ViewModelBase
{
    private FileSystemWatcher fsw;

    public CalibrationViewModel(Calibration calibration)
    {
        fsw = new FileSystemWatcher
            {
                Path = @"C:\Users\user\Desktop\Path\ToFile\Test_1234.txt",
                Filter = @"Test_1234.txt",
                NotifyFilter = NotifyFilters.LastWrite
            };

        fsw.Changed += (o, e) =>
            {
                var lastLine = File.ReadAllLines(e.FullPath).Last();
                Dispatcher.BeginInvoke((Action<string>) WriteLineToSamplesCollection, lastLine); //line that cites error
            };
    }

    private void WriteLineToSamplesCollection(string line)
    {
        // do some work
    }
}

Why am I getting the error, 'Cannot access non-static method BeginInvoke in static context'?

I have looked at several other examples on SE and most cite trying to use a field before the object is created as if they were trying to use a non-static field in a static manner, but I don't understand what it is about my code that is invoking the same error.

Lastly, what can I do to fix this specific issue/code?

Update: Fixed title to reflect issue with a 'method' and not a 'property'. I also added that the class implements ViewModelBase.

3 Answers 3

42

If this is WPF, System.Windows.Threading.Dispatcher does not have a static BeginInvoke() method.

If you want to call that statically (this is, without having a reference to the Dispatcher instance itself), you may use the static Dispatcher.CurrentDispatcher property:

Dispatcher.CurrentDispatcher.BeginInvoke(...etc);

Be aware though, that doing this from a background thread will NOT return a reference to the "UI Thread"'s Dispatcher, but instead create a NEW Dispatcher instance associated with the said Background Thread.

A more secure way to access the "UI Thread"'s Dispatcher is via the use of the System.Windows.Application.Current static property:

Application.Current.Dispatcher.BeginInvoke(...etc);
7
  • 1
    Note that you can use WPF without any Application object, in which case Application.Current is null, meaning the more secure way isn't going to work.
    – user743382
    Commented Jun 3, 2013 at 20:09
  • @hvd Right, however that should happen only in exceptional cases (such as hosting WPF content in a winforms app). Otherwise going regular WPF applications and not having an instance of the Application class brings a lot of issues (such as this, and resources-related stuff).
    – Fede
    Commented Jun 3, 2013 at 20:12
  • Sure, agreed. And even in that case, if some code needs an Application object, it's possible to explicitly create one in the entry point, which will work just fine.
    – user743382
    Commented Jun 3, 2013 at 20:16
  • @HighCore The method WriteLineToSamplesCollection(string line) is responsible for updating an ObservableCollection<T> that the view is bound to. So do I need to use Application.Current.Dispatcher.BeginInvoke()? Commented Jun 3, 2013 at 20:46
  • @IsaiahNelson I'm not sure if the FileSystemWatcher fires it's events in a background thread, if so, yes. You can go with Application.Current.Etc.
    – Fede
    Commented Jun 3, 2013 at 20:47
9

Change this:

Dispatcher.BeginInvoke

to this:

Dispatcher.CurrentDispatcher.BeginInvoke

the issue is BeginInvoke is an instance method and needs an instance to access it. However, your current syntax is trying to access BeginInvoke in a static manner off the class Dispatcher and that's what's causing this error:

Cannot access non-static method BeginInvoke in static context

3

It's because Dispatcher is a class not a property. Shouldn't you be making your CalibrationViewModel class a subclass of some other class which has a Dispatcher property?

2
  • Well the CalibrationViewModel does implement a ViewModelBase for INPC and other items. Commented Jun 3, 2013 at 20:39
  • That's not what your code shows - public class CalibrationViewModel - you're not declaring any interface implementation there. Commented Jun 3, 2013 at 20:42

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.