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I have two programs A and B, when something happened I use the process.start() in A to launch B. after the B was successfully launched the icon of B did not show in the windows taskbar. But when I click on the window of B, the icon of B will show in the windows taskbar. I Can't figure out the reason.

Here is my code snippet

    private void StartProcess()
    {
        string appName = Application.StartupPath + @"\AppB.exe";

        ProcessStartInfo psi = new ProcessStartInfo()
        {
            FileName = appName,
        };

        Process process = Process.Start(psi);

    }
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1  
Can you show to us at least what have you tried? – Agustin Meriles Nov 29 '13 at 12:40

if B is your coded program then set application icon in Installer. After installation that icon will be displayed in task bar on every launch.

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Yes, if I launch the B by Double click , the icon will show int task bar, But I need to lunch it int a background program A. – user3048313 Nov 29 '13 at 13:05

try this

ShowInTaskBar = true;

and you have to use NotifyIcon

http://msdn.microsoft.com/en-us/library/system.windows.forms.notifyicon(v=vs.110).aspx

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