Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

In my xaml file I have an image named OutputImg. I also have a textblock named OutputTB for displaying the name of the image and a button which lets me choose an image from my Pictures folder.

Code behind :

private async void Button_Click_1(object sender, RoutedEventArgs e)
{
    FileOpenPicker openPicker = new FileOpenPicker();
    openPicker.ViewMode = Picker.ViewMode.List;
    openPicker.SuggestedStartLocation = PickerLocationId.PicutresLiibrary;
    openPicker.FileTypeFilter.Add(".png");
    StorageFile.file = await openPicker.PickSingleFileAsync();
    OutputTB.text = file.Name;


    BitmapImage image = new BitmapImage(new Uri(file.path));
    OutputImg.Source = image;
}

Question is that even though I dont get any errors, my picture won't show. It writes out the picture's name to OutputTB.text but Image just stays empty. How can I make my selected image appear in the OutputImg image box.

I understand that there might be a really basic thing I'm missing here but its just meant to be a learning project

share|improve this question

1 Answer 1

up vote 3 down vote accepted

You cannot use file.path to create the Uri object for the bitmap because file.path gives the old style path (e.g. c:\users\...\foo.png). The bitmap expects the new style uri path (e.g. ms-appdata:///local/path..to..file.../foo.png).

However, as far as I know there isn't any way to specify the new style uri path for the Pictures Library. Therefore, you have to use a simple workaround:

Since you have a reference to the file, you can instead get access to the file's stream, and then set the stream as the bitmap's source:

StorageFile file = await openPicker.PickSingleFileAsync();
OutputTB.text = file.Name;

// Open a stream for the selected file.
var fileStream =
    await file.OpenAsync(Windows.Storage.FileAccessMode.Read);

// Set the image source to the selected bitmap.
BitmapImage image = new BitmapImage();
image.SetSource(fileStream);

OutputImg.Source = image;
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.