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I am creating a basic text editing piece of software in C# using Visual Studio 2012.

I would like to display the name of the open file in a label.

Currently, my OpenFileDialog code consists of:

OpenFileDialog ofd = new OpenFileDialog();
ofd.ShowDialog();
try
{
    richTextBoxPrintCtrl1.Text = ofd.FileName;
    StreamReader sr = new StreamReader(richTextBoxPrintCtrl1.Text);
    richTextBoxPrintCtrl1.Text = sr.ReadToEnd();
    sr.Close();

    richTextBoxPrintCtrl1.LoadFile(ofd.FileName, RichTextBoxStreamType.RichText);
}
catch { }
}

Let's say for example, I open Document.rtf using this software. How can I display that "Document.rtf" or any other open file title in a label (named filename1)?

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Why do you set the text to the file's name and then overwrite it with its contents...and then load it? Don't you want to display the file's name in a separate label? –  Julián Urbano Apr 2 '13 at 0:49
    
why can't you capture of the FileName once you've selected the file.. there is a property called FileName you know.. –  MethodMan Apr 2 '13 at 0:54
1  
Why are you ignoring exceptions? Remove that try/catch block –  John Saunders Apr 2 '13 at 1:14
    
Welcome to Stack Overflow! I have edited your title. Please see, "Should questions include “tags” in their titles?", where the consensus is "no, they should not". –  John Saunders Apr 2 '13 at 1:15

2 Answers 2

up vote 1 down vote accepted

use Path.GetFileName Method

string fileName = @"C:\mydir\myfile.ext";
string result = Path.GetFileName(fileName); 
Console.WriteLine(result); // outputs  myfile.ext

UPDATE 1

string fileName = ofd.FileName;
richTextBoxPrintCtrl1.LoadFile(fileName, RichTextBoxStreamType.RichText);
label1.Text = Path.GetFileName(fileName); //  here's your label
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I think he is after the file name from the dialog? –  CRice Apr 2 '13 at 0:49
    
I'm trying to display the name of the current open file on a label. –  user2234123 Apr 2 '13 at 0:53
    
see my update.. –  John Woo Apr 2 '13 at 0:55
    
@CRice then he can pass ofd.FileName into the variable string fileName = ofd.FileName; or directly use ofd.FileName –  John Woo Apr 2 '13 at 0:56
    
Sorted now. J W's update gave the answer (switching the label and the richtextbox line around). –  user2234123 Apr 2 '13 at 1:04

First, check that the user actually selects a file in the OpenFileDialog. Then set the text:

OpenFileDialog ofd = new OpenFileDialog();
// make sure user selects a file
if (ofd.ShowDialog() == System.Windows.Forms.DialogResult.OK) {
    try{
        // load contents
        richTextBoxPrintCtrl1.LoadFile(ofd.FileName, RichTextBoxStreamType.RichText); 
        // update label with file name
        filename1.Text = System.IO.Path.GetFileName(ofd.FileName);
    }catch{
        // handle exception as you wish
    }
}
share|improve this answer
    
Should have probably mentioned that I'm new to programming (studying it at college), so forgive me if I say something stupid. –  user2234123 Apr 2 '13 at 1:02
    
No problem. Just make sure to check that the user did accept the file dialog or you'll have an exception thrown for trying to access the file's name when it wasn't selected! –  Julián Urbano Apr 2 '13 at 1:08
    
Got my catch in place. Just tested it out and all is good. Thanks for your help. –  user2234123 Apr 2 '13 at 1:11
    
Even with the try/catch. Check if the user clicked OK or not...you'll avoid running unnecessary code and throwing exceptions, even it you catch them. –  Julián Urbano Apr 2 '13 at 1:14

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