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I'm new to programming and am using C# and Visual Studio Express 2012. I am creating a windows form and have inserted a button which runs open file dialog when clicked. I have a text box on the form that I'd like to have show the file path of the file that the user selected. I have found some code examples on this site but struggle to understand where they should be placed in the code structure as the examples are often standalone snippets. I hope its not too dumb a question!

Thanks in advance

Lee

The answer in case it's of use to anyone was.......

public partial class Form1 : Form
{
    public Form1()
    {
        InitializeComponent();
    }

    private void button1_Click(object sender, EventArgs e)
    {
        using (FileDialog fileDialog = new OpenFileDialog())
        {
            if (DialogResult.OK == fileDialog.ShowDialog())
            {
                string filename = fileDialog.FileName;

                textBox1.Text = fileDialog.FileName;
            }
        }
    }
}
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2  
If you have found the code samples, show us them here please. –  Tafari Oct 18 '13 at 12:35
    
Spoon feeding tutorial is here –  Sriram Sakthivel Oct 18 '13 at 12:39
    
Hi, by complete fluke i've just worked out how to do it. I've copied the code below. I just added textbox1.text = filedialog.filename in the middle of the code. –  Lee Oct 18 '13 at 12:54
    
Thanks Sriram, I did see that article but I didn't understand it and how it could help. No worries anyway and thanks for taking the time to reply. –  Lee Oct 18 '13 at 12:57

2 Answers 2

up vote 1 down vote accepted

Your OpenFileDialog has property FileName that contains the path of the selected file, assign that to your TextBox.Text

if (openFileDialog.ShowDialog() == DialogResult.OK)
{
    yourTextBox.Text = openFileDialog.FileName;            
}
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OpenFileDialog openFileDialog1 = new OpenFileDialog();
openFileDialog1.Filter = "txt files (*.txt)|*.txt|All files (*.*)|*.*";
if(openFileDialog1.ShowDialog() == DialogResult.OK)
    textbox.text = openFileDialog1.FileName;
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