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Actually I tried to call this from my project. I got this exception. How to solve it? I have already called another Application.Run(frmBind); in my project.

Starting a second message loop on a single thread is not a valid operation. Use Form.ShowDialog instead.

 static void Main(string[] args)
    frmBind = new frmMain();


    //args1 = string.Copy(args);

This is where I call the Application at first

Now again did it here:

   // Application.Run( form);

Here the exception is thrown.

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Can you post a code sample? – Galilyou May 20 '09 at 7:07

2 Answers 2

up vote 6 down vote accepted

It's telling you how to solve it:


or if you want the new form to be modal:

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even after doing that the exception continues – Arunachalam May 20 '09 at 7:15
You should remove the second Application.Run and use this instead. – Mehrdad Afshari May 20 '09 at 7:19
did the same even after that exception continues so only posted this question – Arunachalam May 20 '09 at 7:22
form.ShowDialog shouldn't give the previous exception, if at all. Are you sure you are testing correctly against the latest version? – Mehrdad Afshari May 20 '09 at 7:30

You can only call Application.Run once in a thread. Application.Run will (amongst other things) set up the main message loop for the thread, and there can be only one such loop. This is why you get the exception.

If you simply want to display a form, just use form.Show() or form.ShowDialog() instead. Note that calling ShowDialog for a form that is already visible will throw an InvalidOperationException as well (but with another message).

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even after doing that the exception continues – Arunachalam May 20 '09 at 7:15
You will need to show some code, I think. Otherwise it's really hard to help out. – Fredrik Mörk May 20 '09 at 7:18
Might it be that the form is already visible when you call ShowDialog? – Fredrik Mörk May 20 '09 at 7:40

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