4

I am working in Xamarin.Android. I have two activities on which I need to show the same image. On the first screen, I download it from a web URL and show it but I don't want to do the same on second screen. I want to save it to Internal Storage when it gets downloaded on the first screen and then simply retrieve it from there to show on second activity. How can I do that?

Here is my code that I am using on first activity:

protected override void OnCreate (Bundle bundle)
{
    base.OnCreate (bundle);

    this.SetContentView (Resource.Layout.Main);

    String uriString = this.GetUriString();
    WebClient web = new WebClient ();
    web.DownloadDataCompleted += new DownloadDataCompletedEventHandler(web_DownloadDataCompleted);
    web.DownloadDataAsync (new Uri(uriString));
}

void web_DownloadDataCompleted(object sender, DownloadDataCompletedEventArgs e)
{
    if (e.Error != null)
    {
        RunOnUiThread(() =>
            Toast.MakeText(this, e.Error.Message, ToastLength.Short).Show());
    }
    else
    {
        Bitmap bm = BitmapFactory.DecodeByteArray(e.Result, 0, e.Result.Length);

        // THIS IS WHERE I NEED TO SAVE THE IMAGE IN INTERNAL STORAGE //

        RunOnUiThread(() =>
            {
                ProgressBar pb = this.FindViewById<ProgressBar> (Resource.Id.custLogoProgressBar);
                pb.Visibility = ViewStates.Gone;

                ImageView imgCustLogo = FindViewById<ImageView>(Resource.Id.imgCustLogo);
                imgCustLogo.SetImageBitmap(bm);
            });
    }
}

Now for saving the image, here is what I did inspired by this:

        Bitmap bm = BitmapFactory.DecodeByteArray(e.Result, 0, e.Result.Length);

        ContextWrapper cw = new ContextWrapper(this.ApplicationContext);
        File directory = cw.GetDir("imgDir", FileCreationMode.Private);
        File myPath = new File(directory, "test.png");

        FileOutputStream fos = null;
        try 
        {
            fos = new FileOutputStream(myPath);
            bm.Compress(Bitmap.CompressFormat.Png, 100, fos);
            fos.Close();
        }
        catch (Exception ex) 
        {
            System.Console.Write(ex.Message);
        }

However, the code does not compile and I get an exception where I call bm.Compress(). It says:

Error CS1503: Argument 3: cannot convert from 'Java.IO.FileOutputStream' to 'System.IO.Stream'
  • I'm wondering if someone could answer this one from a generic point of view? Let's say that I have created an Image object that has been loaded from an arbitrary file at a URI (e.g. could be a JPG, PNG, etc.). How can I save that to the local files system in a PCL project? I guess to simplify things, I'm happy to save the file as a constant file type, e.g. always as a PNG regardless of the original source format. – Andrew Jens Sep 7 '16 at 5:01
3

Okay this is how I got it working:

    Bitmap bm = BitmapFactory.DecodeByteArray(e.Result, 0, e.Result.Length);

    ContextWrapper cw = new ContextWrapper(this.ApplicationContext);
    File directory = cw.GetDir("imgDir", FileCreationMode.Private);
    File myPath = new File(directory, "test.png");

    try 
    {
        using (var os = new System.IO.FileStream(myPath.AbsolutePath, System.IO.FileMode.Create))
        {
            bm.Compress(Bitmap.CompressFormat.Png, 100, os);
        }
    }
    catch (Exception ex) 
    {
        System.Console.Write(ex.Message);
    }
| improve this answer | |
0

The Bitmap's compress method takes an object of OutputStream as the third parameter and what you are passing is a FileOutputStream (which drives from OutputStream). You could try passing it an object of OutputStream to see if that solves the problem.

| improve this answer | |
  • OutputStream is actually Java.IO.OutputStream and therefore I still get the error: cannot convert from Java.IO.OutputStream to System.IO.Stream – Ahmed Salman Tahir Apr 17 '14 at 12:08
0

I think this is how you convert back and forth:

using (var stream = new Java.Net.URL(uriString).OpenConnection().InputStream)
{
     bitmap = await BitmapFactory.DecodeStreamAsync(stream);
}

using (var stream = new Java.Net.URL(myPath.Path).OpenConnection().OutputStream)
{
    await bitmap.CompressAsync(Bitmap.CompressFormat.Png, 80, stream);
}
| improve this answer | |

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