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I have it set so if you open a file, it launches my application and adds it to the start-up arguments. But how can I make it so if I double click on a file it loads it in the application that's already running? Rather than loading each file into it's own instance of the application.

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My application was WPF (I should of mentioned that, sorry everyone else), so the second solution worked perfectly! Thank you very much. –  Alex Forbes-Reed Oct 9 '12 at 6:15

3 Answers 3

Mutex is want you need to have a single instance of the application.

bool createdNew = true;
using (Mutex mutex = new Mutex(true, "MyApplicationName", out createdNew))
{
if (createdNew)
{
Application.EnableVisualStyles();
Application.SetCompatibleTextRenderingDefault(false);
Application.Run(new MainForm());
}
}

You can refer this LINK for detailed information.

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use mdiParent and child forms in C# I think it's great feature of vs C#


for more inforamtion: http://msdn.microsoft.com/en-us/library/d4dabts7%28v=vs.80%29.aspx

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You need to make your application single-Instance, see this article:

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