1

Here is my code. I can't seem to use the openFileDialog with the way I used the StreamReader? Any ideas please.

        StreamReader reader = 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 ((reader = openFileDialog1.OpenFile()) != null)
                {
                    using (reader)
                    {
                        textBox2.Text = reader.ReadLine();
                        textBox3.Text = reader.ReadLine();
                    }
                }
            }
            catch (Exception ex)
            {
                MessageBox.Show("Error: Could not read file from disk. Original error: " + ex.Message);
            }
        }

Thank you.

1 Answer 1

13

OpenFileDialog.OpenFile() returns a Stream:

if ((var stream = openFileDialog1.OpenFile()) != null)
{
    using (var reader = new StreamReader(stream))
    {
        // ...
    }
}

Alternatively, so you can omit obtaining the stream manually and ugly null-check following it (will it return null anytime, or rather throw an exception?):

using (reader = new StreamReader(openFileDialog1.Filename))
{
    // ...
}
3
  • It didn't change anything after adding it I got the same error. Can you input it in my code how it would work? maybe im doing something wrong Feb 19, 2014 at 17:46
  • Both code blocks (any of both will do!) are blocks that are supposed to replace your if ((reader = [...]) { } block. Then at // ... you put your textBox2.Text = reader.ReadLine(); code.
    – CodeCaster
    Feb 19, 2014 at 17:58
  • @Antoine the OP's code already defines StreamReader reader = null, but I'll leave your edit for copypasteability I guess.
    – CodeCaster
    Aug 21, 2018 at 8:43

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