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I am adding a couple of sample items in my application so it doesn't look so empty when the user look at it the first time. The list with the sample items should have an image and the image I am going to use is already stored in the /res/drawable-folder of the application.

Since I already have a method that load the items images from a URI i'd like to get the URI to the /res/drawable/myImage.jpg but I don't seem to be able to get it right.

The flow is as follows: Create item with string that represents the URI of the image. Send list of items to an List The list loads the image in a background task by converting the string to URL and then run url.openStream();

I have tried a few options for the URI without any success. "android.resource://....." says unknow protocoll "file://" file not found

So right now I'm a little bit lost about how to fix this..

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The answer by @Pixie does work. –  Gaurav Agarwal Jun 3 '12 at 17:00

1 Answer 1

up vote 19 down vote accepted

You should use ContentResolver to open resource URIs:

Uri uri = Uri.parse("android.resource://your.package.here/drawable/image_name");
InputStream stream = getContentResolver().openInputStream(uri);

Also you can open file and content URIs using this method.

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I get a MalformedUrlException for the following: Uri path = Uri.parse("android.resource://se.javalia.myDrinks/drawable/image0109"); The image is stored in the drawable folder and is a jpg-file. –  Roland Jul 9 '11 at 6:24
    
That's strange because Uri.parse() mustn't throw this exception. When you parse an Uri it just checks for a null reference but doesn't actually parse it. –  Michael Jul 9 '11 at 8:12
    
@Roland You have done mistake somewhere. This does work very well. –  Gaurav Agarwal Jun 3 '12 at 17:00
    
Can we use this stream as well as toString() also? –  Çağrı Çakır Jun 4 at 16:54
    
@ÇağrıÇakır I'm not sure I understand what you mean. Do you want to convert data from the stream to a string? –  Michael Jun 5 at 18:12

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