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Why won't the following code work in C#?

var c1 = new TcpClient(new IPEndPoint(IPAddress.Any, 8787));
var c2 = new TcpClient(new IPEndPoint(IPAddress.Any, 8788));
c1.Connect("localhost", 8788);

I get a "connection cannot be made because the target machine actively refused it". So, the TcpClient constructor doesn't appear to be binding the port, but I tried the Socket.Bind() function with no luck either.

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Are you meaning to run a 'server' on port 8788? – Maxwell Troy Milton King Feb 17 '10 at 22:28
    
It's more a of a peer to peer thing, so neither of them is the server. Due to the nature of the program I need to specify the local port as well (can't just have it set to any and get randomized). – Nayruden Feb 17 '10 at 22:33
up vote 4 down vote accepted

Two TcpClient's can't talk to each other. You need one TcpClient and one TcpListener.

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TcpListener: msdn.microsoft.com/en-us/library/… – Maxwell Troy Milton King Feb 17 '10 at 22:29
    
Is there any simpler way? I don't need to accept more than a single connection. Is a TcpClient simply not able to respond to a SYN? – Nayruden Feb 17 '10 at 22:32
    
@Nayruden, no, TcpClient can't accept a connection. To communicate you need a client and a server. Client connects to server. If you're really talking about always communicating on the same computer, inter-process-communication, then there are a bunch of options on how to do IPC, but TCP is still very common and one of the simplest methods. – Samuel Neff Feb 17 '10 at 22:47

The problem is that you're not listening for connections. You have to use a TcpListener or similar.

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I agree with Sam. You can find an example here.

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