Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am developing a PC WinForms application in C# that needs to connect to a microcontroller later. For now, for testing purposes, I have created a virtual null modem on my computer and linked it with a terminal program.

The virtual null modem I'm using is "com0com": http://sourceforge.net/projects/com0com/

Here is a screenshot of the COM port pair settings: enter image description here

In my application I use the component serialPort. This is how the serialPort is set up:

public bool SerialPortSetup(String cp)
{
    String port = cp;
    int baud = 19200;
    Parity parity = Parity.None;
    int databit = 8;
    StopBits stopbit = StopBits.One;

    try
    {
        // Initialize serial port
        serialPort1 = new SerialPort(port, baud, parity, databit, stopbit);
        serialPort1.DataReceived += new SerialDataReceivedEventHandler(serialPortDataReceived);
        serialPort1.Open();
        return true;
    }
    catch (Exception e)
    {
        MessageBox.Show(e.Message);
        return false;
    }
}

Other properties of the serialPort: enter image description here

The terminal program that I've connected to COM2 is set up with the same baudrate, parity, databit, stopbit, etc. When I have connected my own app to COM1, and the terminal to COM2, it all works just fine. Both writing and reading in both directions.

However, when I don't use the COM2 port (that is, the terminal program is not opened), my app hangs just the second I start to use serialPort1.Write(str), where str is just a random string. When running my app from Visual Studio, I can only close it by stopping the debugging. It's not like Windows marks it as "not responding". Btw, I always check for an opened serialPort before I write to it.

I need this problem to go away. Ideas?

share|improve this question
    
I don't see serialPort.Write(str). You need to determine if your Serial connection is open before you attempt to write to it. The code you posted does not indicate you do check for this as you claim. –  Ramhound Nov 3 '11 at 14:18
    
The code was purely the initiation. As I said, I check for an open port before I write, no need to doubt that. –  eightx2 Nov 3 '11 at 14:34
    
Either set the WriteTimeout property to a reasonable value or check that the device is connected with the DsrHolding property. Or both. –  Hans Passant Nov 3 '11 at 17:22

2 Answers 2

up vote 1 down vote accepted

With real COM port write operation always succeeds and never hangs. Such problems may happen with different port emulations like one you are using now. There is nothing to do with this: test your program with real COM port, if it is working, everything is OK.

If you have two COM ports on your PC, connect them with NULL modem and do the same without using COM port emulation.

Buggy COM port emulation program can do everything from crashing a client program to blue screen. If you are emulation program developer, you can handle this. If not, just use emulation correctly - your client program looks OK.

One more thing that you can test: try to connect terminal program to COM1, without any program connected to COM2, and send something. What happens in this case?

share|improve this answer
    
Thanks for the clarification. As to your last question, the same thing happens: the terminal program freezes. Let's hope it works well with real COM ports! –  eightx2 Nov 9 '11 at 10:04

I know that this question is a bit on the old side, but I came across it when looking for a solution to the same problem.

You need to change a couple of settings in com0com, which are described here http://www.magsys.co.uk/comcap/onlinehelp/null_modem_emulator_com0com.htm.

In brief, you need to enable buffer overrun for the receiving port, and baud rate emulation on the sending port. This is simple to do using the dialog in the OP image.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.