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So I've gotten as far as getting the camera to open, take the picture and then return the camera result as follows:

bt.Click += delegate
   {
      Intent intent = new Intent("android.media.action.IMAGE_CAPTURE");
      StartActivityForResult(intent, 0);
   };
protected override void OnActivityResult(int requestCode, Result resultCode, Intent data)
    {
        base.OnActivityResult(requestCode, resultCode, data);

        if (resultCode == Result.Ok && requestCode == 0)
        {
            string result = data.ToURI();            
        }

The value of result ends up as "#Intent;action=inline-data;B.bitmap-data=true;end". I don't really know where to go from here as far as taking the picture result and being able to turn it over to my web-service that will then save it as an image file on the server.

Edit: The final code for anyone with the same problem

bt.Click += delegate
   {
  Intent intent = new Intent("android.media.action.IMAGE_CAPTURE");
  StartActivityForResult(intent, 0);
  };
protected override void OnActivityResult(int requestCode, Result resultCode, Intent data)
 {
    Bitmap bitmap = (Android.Graphics.Bitmap)data.Extras.Get("data");

    using (var stream = new System.IO.MemoryStream())
    {
      bitmap.Compress(Android.Graphics.Bitmap.CompressFormat.Png, 0, stream);
      byte[] imageBytes = stream.ToArray();
      string base64String = Convert.ToBase64String(imageBytes);

      inst.saveImage(base64String);
    }
 }
    [WebMethod]
    public void saveImage(string stream)
    {
        byte[] imageBytes = Convert.FromBase64String(stream);
        MemoryStream ms = new MemoryStream(imageBytes, 0,
          imageBytes.Length);
        var filepath = "C:\\Temp\\Test.png";

        using (Stream file = File.OpenWrite(filepath))
        {
            ms.CopyTo(file, (int)stream.Length);
        }

    }
share|improve this question
up vote 1 down vote accepted

The data you get back includes the bitmap data, as your "result" string shows. You can pull the bitmap out of the Intent and compress it out to a stream by doing something like this:

var bitmap = (Android.Graphics.Bitmap) data.Extras.Get("data");

using (var stream = new MemoryStream())
{
    bitmap.Compress(Android.Graphics.Bitmap.CompressFormat.Png, 0, stream);

    // stream now contains the image data
}

You can use any type of .NET stream there, so the MemoryStream is just an example.

share|improve this answer
    
The var bitmap = (Android.Graphics.Bitmap)data.GetStringExtra("data"); line is producing a null reference exception. – jmease Jan 17 '12 at 19:11
    
That makes sense, I didn't mean to call GetStringExtra when it's obviously not a string...updated. – Greg Shackles Jan 17 '12 at 20:20
    
Not getting the null reference error anymore. But still not sure stream contains anything. When passing the stream to the webservice to be saved, I need to convert stream to a string (Was having a crazy type mismatch situation when I leave it as a stream). When I do StreamReader reader = new StreamReader(stream); string text = reader.ReadToEnd(); text is empty. – jmease Jan 18 '12 at 12:57
    
That's because the stream's pointer is at the end of the stream. Run this before reading the stream to move it back to the beginning: stream.Seek(0, SeekOrigin.Begin); – Greg Shackles Jan 18 '12 at 13:34
    
The value of text now comes to �PNG\r\n\n and when I pass it to the webservice and do public void saveImage(string streams) { byte[] byteArray = Encoding.ASCII.GetBytes(streams); MemoryStream stream = new MemoryStream(byteArray); var filepath = "C:\\Temp\\Test.png"; using (Stream file = File.OpenWrite(filepath)) { stream.CopyTo(file, (int)stream.Length); } } I get The request failed with HTTP status 400: BadRequest – jmease Jan 18 '12 at 14:16

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