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I am playing with mage source in wpf and tried this simple test to see if I can get any lucky:

 var test = new BitmapImage(new Uri("https://thenotebook.org/sites/default/files/fallCartoon.jpg"));

when looking at test in debug window, all of its properties are set to null and hence it doesn't seem that it loaded the image. why?

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Can you open that image in your browser with the same URI? And what happens if you create the URI separately and then feed it into the Bitmap? –  Peter M Feb 12 at 12:13
    
yes I can. I did this to make sure that it is a valid uri. –  mans Feb 12 at 12:15

2 Answers 2

up vote 0 down vote accepted

BitmapImage loads network data asynchronously. Which means that it returns right away while starting the download in the background. So there may be nothing wrong with your code. Check the IsDownloading property. Subscribe to the DownloadCompleted and DownloadFailed events.

Sync version according to our comments:

var bytes = new WebClient().DownloadData("https://thenotebook.org/sites/default/files/fallCartoon.jpg");
var test = new BitmapImage();
test.BeginInit();
test.StreamSource = new MemoryStream(bytes);
test.EndInit();
Console.WriteLine(test.PixelWidth);
Console.WriteLine(test.PixelHeight);
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Thanks. Is there any way that I make is sync? I tried chacheoption and set it to None, but no difference –  mans Feb 12 at 12:22
    
I don't think it's possible. It's been asked already: stackoverflow.com/questions/3659574/… . I would download the file with a WebClient and initialize the bitmap from a memory stream. So you don't need to save a temporary file. –  fejesjoco Feb 12 at 12:23

Following fejesjoco's advice:

public static BitmapImage ImageFromUriSync(string uri)
{
    using(var client = new WebClient())
    {
        byte[] data = client.DownloadData(uri);

        using(var stream = new MemoryStream(data))
        {
            var img = new BitmapImage();
            img.BeginInit();
            img.CacheOption = BitmapCacheOption.OnLoad;
            img.StreamSource = stream;
            img.EndInit();

            return img;
        }
    }
}
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