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How I open a file in c#? I don't mean reading it by textreader and readline(). I mean open it as an independent file in notepad.

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You want to launch an instance of notepad from your program and have it open a specific file? –  Dismissile Oct 29 '10 at 19:37
    
yes this is what i want –  Mohamed Oct 29 '10 at 19:37
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Note: At when I tried it with .Net 2.0, Process.Start did not automatically expand "%windir%", though omiting it as in viabhav's answer or expanding it explicitly (Environment.GetEnvironmentVariable("windir")) worked successfully. –  Brian Oct 29 '10 at 20:45
    
You can integrate a notepad clone into your application and customize it to function just the way you want it. I write a notepad clone in C# you can find it here: simplygoodcode.com/2012/04/notepad-clone-in-net-winforms.html –  luisperezphd Aug 1 '12 at 19:06
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any final solution ? Mark it as answer. –  Kiquenet Mar 4 '13 at 13:32
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6 Answers

You need Process.Start().

The simplest example:

Process.Start("notepad.exe", fileName);

More Generic Approach:

Process.Start(fileName);

The second approach is probably a better practice as this will cause the windows Shell to open up your file with it's associated editor. Additionally, if the file specified does not have an association, it'll use the Open With... dialog from windows.

Note to those in the comments, thankyou for your input. My quick n' dirty answer was slightly off, i've updated the answer to reflect the correct way.

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I would do some escaping if I were you. –  Albin Sunnanbo Oct 29 '10 at 19:39
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I agree that this is one way to do this, another way if you wanted to open the document but not run the program would be to use something along the lines of: richTextBox1.LoadFile(Program.editInC,RichTextBoxStreamType.UnicodePlainText) for loading the actual contents into a file. –  Jim Oct 29 '10 at 19:43
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It's better to pass the file name as a second parameter. Actually, according to the documentation, your code shouldn't work, as the single parameter of Process.Start is document or application file name, whereas yours is the application name combined with the command line parameter. –  Vlad Oct 29 '10 at 20:27
    
@Albin: Thanks, totally overlooked that one :p @Jim: I believe the question was asking how to launch an editor. @Vlad: Thanks, you are correct. –  Aren Oct 30 '10 at 0:33
    
Using Process.Start(filename) is a potential command injection, whereby an attacker could substitute MyTextFile.txt for MyMalicious.bat or fdisk .... Better to use Process.Start("notepad.exe", filename). –  Geoff Bennett Jan 29 '13 at 23:10
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this will open the file with the default windows program (notepad if you haven't changed it);

Process.Start(@"c:\myfile.txt")
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I would do some escaping if I were you. –  Albin Sunnanbo Oct 29 '10 at 19:39
    
you're right - fixed. –  Colin Pickard Oct 29 '10 at 19:40
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You are not providing a lot of information, but assuming you want to open just any file on your computer with the application that is specified for the default handler for that filetype, you can use something like this:

var fileToOpen = "SomeFilePathHere";
var process = new Process();
process.StartInfo = new ProcessStartInfo()
{
    UseShellExecute = true,
    FileName = fileToOpen
};

process.Start();
process.WaitForExit();

The UseShellExecute parameter tells Windows to use the default program for the type of file you are opening.

The WaitForExit will cause your application to wait until the application you luanched has been closed.

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System.Diagnostics.Process.Start( "notepad.exe", "text.txt");
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You can use Process.Start, calling notepad.exe with the file as a parameter.

 Process.Start(@"notepad.exe", pathToFile);
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Newlines are not very useful in Process.Start... –  Albin Sunnanbo Oct 29 '10 at 19:45
    
@Albin Sunnanbo - thanks... good catch :) –  Oded Oct 29 '10 at 19:45
    
By the way, %pathVariables% do not work with this method. Process.Start(@"%windir%\notepad.exe"); throws a Win32Exception:"Cannot find file" but normally it should work. –  Aren Oct 30 '10 at 0:39
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Use System.Diagnostics.Process to launch an instance of Notepad.exe.

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