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I call my winforms with the following code:

try
        {
            if (Application.OpenForms.OfType<frmBackupManager>().Count() > 0)
            {
                if (Application.OpenForms["frmBackupManager"].WindowState == FormWindowState.Minimized)
                {
                    Application.OpenForms["frmBackupManager"].WindowState = FormWindowState.Normal;
                    Application.OpenForms["frmBackupManager"].BringToFront();
                }
                else
                {
                    Application.OpenForms["frmBackupManager"].BringToFront();
                }
            }
            else
            {
                // Show Backup Manager                    
                frmBackupManager myBackupManager;
                myBackupManager = new frmBackupManager();
                myBackupManager.StartPosition = FormStartPosition.Manual;
                myBackupManager.Location = new Point(this.Location.X + this.Width / 2 - myBackupManager.Width / 2, this.Location.Y + this.Height / 2 - myBackupManager.Height / 2);
                myBackupManager.Show();
            }
        }
        catch (Exception ex)
        {
            MessageBoxEx.Show("Unable to perform requested action: " + ex.Message.ToString(), "Error Message", MessageBoxButtons.OK, MessageBoxIcon.Error);
        }

I would like to call this from a method or class but I keep getting an error the type or namespace name 'FormName' could not be found (are you missing a using directive or an assembly reference?) in each place where FormName is used.

private void btnBackupManager_Click(object sender, EventArgs e)
    {
        // Launch Backup Manager Form
        LaunchForm("frmBackupManager", "MyBackupManager");
    }

    private void LaunchForm(string FormName, string MyForm)
    {
        try
        {
            if (Application.OpenForms.OfType<FormName>().Count() > 0)
            {
                if (Application.OpenForms[FormName].WindowState == FormWindowState.Minimized)
                {
                    Application.OpenForms[FormName].WindowState = FormWindowState.Normal;
                    Application.OpenForms[FormName].BringToFront();
                }
                else
                {
                    Application.OpenForms[FormName].BringToFront();
                }
            }
            else
            {
                // Show Backup Manager                    
                FormName myFormName;
                myFormName = new FormName();
                myFormName.StartPosition = FormStartPosition.Manual;
                myFormName.Location = new Point(this.Location.X + this.Width / 2 - myFormName.Width / 2, this.Location.Y + this.Height / 2 - myFormName.Height / 2);
                myFormName.Show();
            }
        }
        catch (Exception ex)
        {
            MessageBoxEx.Show("Unable to perform requested action: " + ex.Message.ToString(), "Error Message", MessageBoxButtons.OK, MessageBoxIcon.Error);
        }

    }
share|improve this question

closed as too localized by Jeff Atwood Sep 19 '11 at 6:49

This question is unlikely to help any future visitors; it is only relevant to a small geographic area, a specific moment in time, or an extraordinarily narrow situation that is not generally applicable to the worldwide audience of the internet. For help making this question more broadly applicable, visit the help center. If this question can be reworded to fit the rules in the help center, please edit the question.

4 Answers 4

Like other posters have mentioned, you're trying to use the FormName variable as a type.

Try something like this instead:

private static void LaunchForm<T>() where T : Form, new()
{
  var existing = Application.OpenForms.OfType<T>().FirstOrDefault();
  if(existing != null) {
    // Make sure existing is visible.
  } else {
    var newForm = new T();
    // Initialize it here.
    newForm.Show();
  }
}
share|improve this answer

Your problem is you use a variable as a type. For example, this line:

if (Application.OpenForms.OfType<FormName>().Count() > 0)

FormName may indeed contain the name of the type, but it itself is not a type.

Other lines with this issue include:

FormName myFormName;
myFormName = new FormName();

You may be able to work around this issue using reflection:

if(Application.OpenForms.Where(form => form.GetType().Name == FormName).Count() > 0)
Form myFormName;
myFormName = (Form)Assembly.GetCallingAssembly().
    GetType("YourNamespace." + FormName).
    GetConstructor(new Type[] {}).
    Invoke(new object[] {});
share|improve this answer
    
Thanks for the info. How would I "repair" so that the code will work? –  Zolton Sep 19 '11 at 5:42
    
I edited my answer to include a way. (although there's probably a better way that doesn't require hardcoding "YourNamespace.") –  icktoofay Sep 19 '11 at 5:48
    
This is wrong vision, because FormName is not a local variable, but a type. The error is that local variable name and class names are identical. Easiest way just to rename local variable name to other. –  Artur Mustafin Sep 19 '11 at 6:21
    
@Artur: I don't think so. –  icktoofay Sep 19 '11 at 6:23
  • Your generic function could have an input parameter of type Form (class from which all Win-Forms are derived)
  • For Example: -

    private void LaunchForm(Form formToOpen);

  • This is so that you could use the object reference where ever required

  • And access just the name (the Form class's Name property; Ex: - formToOpen.Name), as applicable and relevant
  • This keeps the implementation, strongly typed
  • So the required function's implementation could be as follows:

    private void LaunchForm(Form formToOpen)
    {
        try
        {
            if (formToOpen != null)
            {
                if (Application.OpenForms.OfType<Form>().Count() > 0)
                {
                    if (Application.OpenForms[formToOpen.Name].WindowState == FormWindowState.Minimized)
                    {
                        Application.OpenForms[formToOpen.Name].WindowState = FormWindowState.Normal;
                        Application.OpenForms[formToOpen.Name].BringToFront();
                    }
                    else
                    {
                        Application.OpenForms[formToOpen.Name].BringToFront();
                    }
                }
                else
                {
                    Form formToLaunch;
                    formToLaunch = formToOpen;
                    formToLaunch.StartPosition = FormStartPosition.Manual;
                    formToLaunch.Location = new Point(this.Location.X + this.Width / 2 - formToLaunch.Width / 2, this.Location.Y + this.Height / 2 - formToLaunch.Height / 2);
                    formToLaunch.Show();
                }
            }
        }
        catch (Exception ex)
        {
            MessageBoxEx.Show("Unable to perform requested action: " + ex.Message.ToString(), "Error Message", MessageBoxButtons.OK, MessageBoxIcon.Error);
        }
    }
    

    }

share|improve this answer
    
Tathagat I tried your solution. I still get is a 'type' but is used like a 'variable'. I called LaunchForm(frmBackupManager); –  Zolton Sep 19 '11 at 6:57
    
Could you please tell me the exact line of code in the changed function (as per my suggested implementation), at which you are getting the error? –  Tathagat Verma Sep 20 '11 at 13:34

Your problem is you use a type (class name) as a variable.

The error is that local variable name and class name are identical. Easiest way to fix the issue, is just to rename local variable name to other.

Here, FormType is a class name, used as a type, but this is wrong usage of class name:

if (Application.OpenForms.OfType<FormName>().Count() > 0) 
{
    if (Application.OpenForms[FormName].WindowState == FormWindowState.Minimized) 
    { 
        Application.OpenForms[FormName].WindowState = FormWindowState.Normal; 
        Application.OpenForms[FormName].BringToFront(); 
    } 
    else 
    { 
        Application.OpenForms[FormName].BringToFront(); 
    } 
}

Switch to:

if (Application.OpenForms.OfType<FormName>().Count() > 0) 
{
    if (Application.OpenForms[childForm].WindowState == FormWindowState.Minimized) 
    { 
        Application.OpenForms[childForm].WindowState = FormWindowState.Normal; 
        Application.OpenForms[childForm].BringToFront(); 
    } 
    else 
    { 
        Application.OpenForms[childForm].BringToFront(); 
    } 
}

where childForm is a parameter to a method:

private void LaunchForm(string childForm, string MyForm)    
{
    ...
}
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