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I am trying to display 3 images in rapid succession, around 200ms per image. Here is the code right now i have:

        for (int i = 0; i < 3; i++) 
        {
            if ((_currentGridPos >= 0 && _currentGridPos < 2) || (_currentGridPos >= 3 && _currentGridPos < 5))
            {
                pictureBox1.Image = Image.FromFile(@"C:\Users\Nyago\Images\g" + _currentGridPos + "_r" + i + ".JPG");
                pictureBox1.Refresh();
                Thread.Sleep(200);
            }
        }

The problem I am having with this code is that the images aren't showing up in my picture box, there is just the pause then thats it. If someone could help me it would be greatly appreciated!

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3  
Why would you use Thread.Sleep for this? What's wrong with a good old Timer? – DGibbs Oct 21 '13 at 8:52
    
I think you're changing the image in the UI thread. – Ahmed KRAIEM Oct 21 '13 at 8:54
    
Also, try to load images from the file only once, outside of the loop. It might help. – Zonko Oct 21 '13 at 9:00
up vote 2 down vote accepted

I'll suggest you to mark the method async and use Task.Delay

private async void DoSomething()
{
    for (int i = 0; i < 3; i++) 
    {
        if ((_currentGridPos >= 0 && _currentGridPos < 2) || (_currentGridPos >= 3 && _currentGridPos < 5))
        {
            pictureBox1.Image = Image.FromFile(@"C:\Users\Nyago\Images\g" + _currentGridPos + "_r" + i + ".JPG");
            pictureBox1.Refresh();
            await Task.Delay(200);//<--Note Task.Delay don't block UI
        }
    }
}
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This worked for me! Thank-you – user2184723 Oct 22 '13 at 2:43

Your code keeps the UI thread busy and therefore blocks the UI (including updating its graphical state). Avoid using Thread.Sleep(200);; use a timer or async/await instead. That way, the UI thread is not blocked while waiting for the 200ms to pass.

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