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I'm trying to use openFileDialog to open a Bitmap image and place it on my form. My form construtor...

 public Form1()
    {
        InitializeComponent();
        drawing = new Bitmap(drawingPanel.Width, drawingPanel.Height, drawingPanel.CreateGraphics());
        Graphics.FromImage(drawing).Clear(Color.White);

        // set default value for line thickness
        tbThickness.Text = "5";
    }

... opens a new form with a blank screen, and I can draw on it using the mouse and various color selector buttons. I then save the file with this method:

private void btnSave_Click(object sender, EventArgs e)
    {
        // save drawing
        if (file == null)   // file is a FileInfo object that I want to use
                            // to check to see if the file already exists 
                            // I haven't worked that out yet
        {
            drawing.Save("test.bmp");
            //SaveBitmap saveForm = new SaveBitmap();
            //saveForm.Show();
        }
        else
        {
            drawing.Save(fi.FullName);
        }
    }

The image does save to the debug folder as a .bmp file. Then I use OpenFileDialog to open the file:

private void btnOpen_Click(object sender, EventArgs e)
    {
        FileStream myStream;
        OpenFileDialog openFile = new OpenFileDialog();
        openFile.Filter = "bmp files (*.bmp)|*.bmp";

        if (openFile.ShowDialog() == DialogResult.OK)
        {
            try
            {
                if ((myStream = (FileStream)openFile.OpenFile()) != null)
                {
                    using (myStream)
                    {
                        PictureBox picBox = new PictureBox();
                        picBox.Location = drawingPanel.Location;
                        picBox.Size = drawingPanel.Size;
                        picBox.Image = new Bitmap(openFile.FileName);
                        this.Controls.Add(picBox);
                    }
                }
            }
            catch (Exception ex)
            {

            }
        }
    }

What happes is that OpenFileDialog box comes up. When I select the file test.bmp, the screen goes away and then reappears, when I select it again, the OpenFileDialog window goes away and I'm back to my form with no image. Was hoping for some pointers. No compile or runtime errors.

share|improve this question
    
What is drawingPanel? –  banging Mar 1 '13 at 19:34
    
You're talking about a lot of things at once. What is your main question? If you want to know why it pops up twice: Well, it's because you have two OpenFileDialogs, dlg, and d –  aquinas Mar 1 '13 at 19:34
    
Have you checked to see that the code inside the if statement is executed? –  evanmcdonnal Mar 1 '13 at 19:34
    
Now that I see that I was calling OpenDialog twice, and have fixed that, my main question is why the image isn't showing up on my form. –  deadEddie Mar 1 '13 at 20:01

3 Answers 3

up vote 0 down vote accepted

Why are you calling ShowDialog() twice?

Just call ShowDialog once, so it doesn't open twice, like you indicated.

From MSDN:

OpenFileDialog openFileDialog1 = new OpenFileDialog();
openFileDialog1.Filter = "bmp files (*.bmp)|*.bmp";

if(openFileDialog1.ShowDialog() == DialogResult.OK)
{
    try
    {
        if ((myStream = openFileDialog1.OpenFile()) != null)
        {
            using (myStream)
            {
                // Insert code to read the stream here.
                PictureBox picBox = new PictureBox();
                picBox.Location = drawingPanel.Location;
                picBox.Size = drawingPanel.Size;
                picBox.Image = new Bitmap (myStream);
                this.Controls.Add(picBox);
            }
        }
    }
    catch (Exception ex)
    {
        MessageBox.Show("Error: Could not read file from disk. Original error: " + ex.Message);
    }
}
share|improve this answer
    
Thank you ryrich. Like evanmcdonnal's answer, everything seems to function, but the image just never shows up on the form. –  deadEddie Mar 1 '13 at 20:25
    
@deadEddie: try messing with the PictureBox options, maybe picBox.Visible = true and make sure Location and Size are being set correctly. –  ryrich Mar 1 '13 at 20:35
    
Everything seems okay, size and location are set correctly and visible is set to true. On my form, I place a drawing panel (drawingPanel), which I use to locate and size my bitmap image. I'm wondering if I should have used a picture box instead. –  deadEddie Mar 1 '13 at 20:48
    
@deadEddie: I've tested this on my computer (just the OpenDialog portion), and I opened a sample bmp image and it works fine. The image pops up on my form. My Location and Size are different than your code, try changing those (maybe like picBox.Location = new Point(0,0) and picBox.Size = new Size(100,100) just as a test?) –  ryrich Mar 1 '13 at 21:11
    
That was very helpful. The problem I seem to be having is that the image will display anywhere on the form EXCEPT for the area where I want the picture box !? Do you think my constructor (see above) would impact that? –  deadEddie Mar 2 '13 at 1:06

You open a dialog panel, then when it closes you check to see if the result was OK; then you open another new dialog in the using block; then you assign the image result of that to the PictureBox, and then throw everything away when the using block disposes.

share|improve this answer

You're calling ShowDialogue twice which is likely the source of your problem. Just use the following code, remove everything else from the method. Your use of using is also incorrect. it does clean up which is disposing of the results. You need to refactor or remove the using statement.

private void btnOpen_Click(object sender, EventArgs e)
{
     OpenFileDialog dlg = new OpenFileDialog()
     {
            dlg.Title = "Open Image";
            dlg.Filter = "bmp files (*.bmp)|*.bmp";

            if (dlg.ShowDialog() == DialogResult.OK)
            {
                PictureBox picBox = new PictureBox();
                picBox.Location = drawingPanel.Location;
                picBox.Size = drawingPanel.Size;
                picBox.Image = new Bitmap (dlg.FileName);
                this.Controls.Add(picBox);
            }
      }
  }

The code above works but is without clean up or error handling. I'll leave that to you.

share|improve this answer
    
Too many brackets, but the code runs, with the exception that no image is showing up on my form. –  deadEddie Mar 1 '13 at 19:57
    
@deadEddie I don't know much about PictureBox but try, picBox.ImageLocation = dlg.FileName; BitMap inherits from Image so I think it should work but I would inspect the Bitmap to make sure that object is correctly constructed, if it is add a cast (Image) or try setting the ImageLocation property instead. –  evanmcdonnal Mar 1 '13 at 19:58
    
I tried picBox.ImageLocation = dlg.FileName. Everything seems to work, I'm just not getting the image to show up on the form :( –  deadEddie Mar 1 '13 at 20:19
    
@deadEddie what is the value of picBox.visible ? The problem is likely outside of this block of code. –  evanmcdonnal Mar 1 '13 at 20:21
    
the value of picBox.Visible is true –  deadEddie Mar 1 '13 at 20:36

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