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I am having some exception in starting a process from C# Following is the code

Process myProcess = new Process();  
try  
{  
    myProcess.StartInfo.UseShellExecute = true;  
    myProcess.StartInfo.FileName = "c:\\windows\\system32\\notepad.exe C:\\Users\\Karthick\\AppData\\Local\\Temp\\5aau1orm.txt";  
    myProcess.StartInfo.CreateNoWindow = false;  
    myProcess.Start();  
}  
catch (Exception e)  
{  
    Console.WriteLine(e.Message);  
}

And sometimes I get the exception "The filename, directory name, or volume label syntax is incorrect" if useShellExecute is set to false

Any Ideas as to why this is not coming out correctly

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4 Answers 4

up vote 1 down vote accepted

As mentioned by @SLaks, this is the appropriate way let the default application (in your case mapped to the .txt extension) open the file

Process.Start("test.txt");

But if you prefer to open text files only in Notepad and not in other default Text Editor

ProcessStartInfo processStartInfo = new ProcessStartInfo(@"c:\Windows\System32\notepad.exe", "text.txt");
Process.Start(processStartInfo);
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Thanks. This works exactly. I wanted only notepad to open the application –  Karthick Feb 7 '11 at 1:28

You can't put an entire commandline in the FileName property.

Instead, you should just Start the txt file, which will open in the user's default editor:

Process.Start(@"C:\Users\Karthick\AppData\Local\Temp\5aau1orm.txt");
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You are trying to execute c:\\windows\\system32\\notepad.exe C:\\Users\\Karthick\\AppData\\Local\\Temp\\5aau1orm.txt. If you aren't using a shell, it will be interpreted literally. If you use the shell, the shell will take care of the argument parsing.

Use the ProcessStartInfo.Arguements property to supply arguments instead.

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FileName property dosen't take command line type syntax. What you have specified is for command line.

Since its only a .txt file you can use Process.Start() Method with full file path. It will automatically search for the respective default program to open the file.

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