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// Browses file with OpenFileDialog control

    private void btnFileOpen_Click(object sender, EventArgs e)
    {
        OpenFileDialog openFileDialogCSV = new OpenFileDialog();

        openFileDialogCSV.InitialDirectory = Application.ExecutablePath.ToString();
        openFileDialogCSV.Filter = "CSV files (*.csv)|*.csv|All files (*.*)|*.*";
        openFileDialogCSV.FilterIndex = 1;
        openFileDialogCSV.RestoreDirectory = true;

        if (openFileDialogCSV.ShowDialog() == DialogResult.OK)
        {
            this.txtFileToImport.Text = openFileDialogCSV.FileName.ToString();
        }

    }

In the code above, i browse for a file to open. What I want to do is, browse for a file, select it and then press ok. On clicking ok, i want to make a copy of the seleted file and give that duplicate file a .txt extension. I need help on achieving this.

Thanks

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3 Answers 3

up vote 4 down vote accepted
if (openFileDialogCSV.ShowDialog() == DialogResult.OK)
{
    var fileName = openFileDialogCSV.FileName;
    System.IO.File.Copy( fileName ,Path.Combine(Path.GetDirectoryName(fileName), Path.GetFileNameWithoutExtension(fileName)+".txt"));
}

Above code will copy selected file as txt with same name and in to same directory.

if you need to overwrite existing file with same name add another parameter to Copy method as true.

System.IO.File.Copy(source, destination, true);

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this works, thanks –  StackTrace Jun 21 '12 at 8:18

You use File.Copy as follows,

File.Copy(openFileDialogCSV.FileName., openFileDialogCSV.FileName + ".txt");
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where u r getting this error? which line? –  Rajesh Subramanian Jun 21 '12 at 8:14

Try this

private void btnFileOpen_Click(object sender, EventArgs e)
    {
        OpenFileDialog openFileDialogCSV = new OpenFileDialog();

        openFileDialogCSV.InitialDirectory = Application.ExecutablePath.ToString();
        openFileDialogCSV.Filter = "CSV files (*.csv)|*.csv|All files (*.*)|*.*";
        openFileDialogCSV.FilterIndex = 1;
        openFileDialogCSV.RestoreDirectory = true;

        if (openFileDialogCSV.ShowDialog() == DialogResult.OK)
        {
            this.txtFileToImport.Text = openFileDialogCSV.FileName.ToString();
    System.IO.File.Copy(this.txtFileToImport.Text,"C://123.txt")
        }

    }

123 can be changed by any file name that you want.

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