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I am writing a windows forms based application on visual studio ultimate 2012. I put in an opendialog in order to open and read a file. Here's the code:-

private void button1_Click(object sender, System.EventArgs e)
{
Stream myStream = null;
OpenFileDialog openFileDialog1 = new OpenFileDialog();

openFileDialog1.InitialDirectory = "c:\\" ;
openFileDialog1.Filter = "txt files (*.txt)|*.txt|All files (*.*)|*.*" ;
openFileDialog1.FilterIndex = 2 ;
openFileDialog1.RestoreDirectory = true ;

if(openFileDialog1.ShowDialog() == DialogResult.OK)
{
    try
    {
        if ((myStream = openFileDialog1.OpenFile()) != null)
        {
            using (myStream)
            {
                // Insert code to read the stream here.
            }
        }
    }
    catch (Exception ex)
    {
        MessageBox.Show("Error: Could not read file from disk. Original error: " + ex.Message);
    }
}

}

But every time I try to run this, when I choose a file from the browser window, it shows me a filenotfound exception as it looks for the file in the default directory(located in Documents/VisualStudio/Projects/WindowsFormApplication/bin/debug/openFileDialog1), not in the directory I specified. Please help!!

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1 Answer 1

The problem is the following line

openFileDialog1.RestoreDirectory = true;

This causes the current directory to be reset to the original directory once the dialog was closed. It appears the OpenFile method is using a relative path and hence is attempting to open the file where the dialog started, not where it ended.

Try removing the RestoreDirectory setting and manually reset the path once you are through using the file

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that worked like charm. Thanks!! –  user2009763 Mar 26 '13 at 15:29

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