9

How do i force a context menu for a tray icon to be shown when it is click rather than just right-clicked.

Ive tried using the MouseClick event, but the eventargs have the mouse position at x0y0.

2 Answers 2

13

This should do it for you:

private void notifyIcon1_Click(object sender, EventArgs e)
        {
            contextMenuStrip1.Show(Cursor.Position.X, Cursor.Position.Y);
        }
1
  • Also, if you need to move the content around you could always do X +/- 10 or something Commented May 7, 2009 at 14:59
11

An alternate method that I have found to work a bit better:

private void notifyIcon1_MouseUp(object sender, MouseEventArgs e)
    {
        if (e.Button == MouseButtons.Left)
        {
            System.Reflection.MethodInfo mi = typeof(NotifyIcon).GetMethod("ShowContextMenu", System.Reflection.BindingFlags.Instance | System.Reflection.BindingFlags.NonPublic);
            mi.Invoke(notifyIcon1, null);
        }
    }
1
  • This works well because it makes left-click behave exactly like right-click (positioning, behaviour etc). In my code I stored a private reference to the method returned by the GetMethod call in the app constructor, to avoid doing reflection calls on every click.
    – Mark Bell
    Commented Jun 15, 2022 at 6:42

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