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I have found that when I execute the show() method for a contextmenustrip (a right click menu), if the position is outside that of the form it belongs to, it shows up on the taskbar also.

I am trying to create a right click menu for when clicking on the notifyicon, but as the menu hovers above the system tray and not inside the form (as the form can be minimised when right clicking) it shows up on the task bar for some odd reason

Here is my code currently:

private: System::Void notifyIcon1_MouseClick(System::Object^  sender, System::Windows::Forms::MouseEventArgs^  e) {

if(e->Button == System::Windows::Forms::MouseButtons::Right) {

    	this->sysTrayMenu->Show(Cursor->Position);

    }
}

What other options do I need to set so it doesn't show up a blank process on the task bar.

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Ditto, i had the same problem/bug. –  acidzombie24 Apr 13 '09 at 18:59

4 Answers 4

up vote 7 down vote accepted

Try assigning your menu to the ContextMenuStrip property of NotifyIcon rather than showing it in the mouse click handler.

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Ah! You're a genius! I had no idea that they had a property for this! I was doing things the 'hard' way again :) –  Cetra Sep 25 '08 at 13:35
    
You solved my problem as well –  acidzombie24 Apr 13 '09 at 18:58
    
Lots of other controls have this property, too. –  Fantius Nov 4 '10 at 15:14
    
I think this will solve it for me too, but I am kinda new to all this. Could somebody explain how I would "assign" the menu to the ContextMenuStrip? I think it is rather obvious once I've seen it, but for now I don't have a clue :) –  Jelmer May 23 at 9:16
    
Never mind, I found out how to do it. For others who come along this problem: msdn.microsoft.com/en-us/library/… –  Jelmer May 23 at 9:36

Let's assume that you have 2 context menu items: ContextMenuLeft and ContextMenuRight. By default, from the NotifyIcon properties you already assigned one of them. Before calling Left Button Click, just change them, show the context menu, and then change them again.

NotifyIcon.ContextMenuStrip = ContextMenuLeft; //let's asign the other one
MethodInfo mi = typeof(NotifyIcon).GetMethod("ShowContextMenu", BindingFlags.Instance | BindingFlags.NonPublic);
mi.Invoke(NotifyIcon, null);
NotifyIcon.ContextMenuStrip = ContextMenuRight; //switch back to the default one

Hope this helps.

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The best and right way, without Reflection is:

{
  UnsafeNativeMethods.SetForegroundWindow(new HandleRef(notifyIcon.ContextMenuStrip, notifyIcon.ContextMenuStrip.Handle));
  notifyIcon.ContextMenuStrip.Show(Cursor.Position);
}

where UnsafeNativeMethods.SetForegroundWindow is:

public static class UnsafeNativeMethods
{
  [DllImport("user32.dll", CharSet = CharSet.Auto, ExactSpelling = true)]
  public static extern bool SetForegroundWindow(HandleRef hWnd);
}
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The problem I have is that my menu is available from both a double middle-click and the notification icon.

When right clicking the notification icon, there is no taskbar button, but when I manually Show(Cursor.Position) then it shows a taskbar button.

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