Dismiss
Announcing Stack Overflow Documentation

We started with Q&A. Technical documentation is next, and we need your help.

Whether you're a beginner or an experienced developer, you can contribute.

Sign up and start helping → Learn more about Documentation →

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..

share|improve this question
1  
The answer by @Pixie does work. – Gaurav Agarwal Jun 3 '12 at 17:00
up vote 40 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.

share|improve this answer
    
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 '14 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 '14 at 18:12

This is what you really need:

 Uri imageUri = Uri.parse(ContentResolver.SCHEME_ANDROID_RESOURCE +
 "://" + getResources().getResourcePackageName(R.drawable.ic_launcher)
 + '/' + getResources().getResourceTypeName(R.drawable.ic_launcher) + '/' + getResources().getResourceEntryName(R.drawable.ic_launcher) );
share|improve this answer
    
Does this need some permission?I cant use this – lirui Sep 29 '15 at 11:09
    
I dont think so. What is the error? – xnagyg Sep 29 '15 at 15:09
/**
 * get uri to drawable or any other resource type if u wish 
 * @param context - context
 * @param drawableId - drawable res id
 * @return - uri 
 */
public static final Uri getUriToDrawable(@NonNull Context context, @AnyRes int drawableId) {
    Uri imageUri = Uri.parse(ContentResolver.SCHEME_ANDROID_RESOURCE +
            "://" + context.getResources().getResourcePackageName(drawableId)
            + '/' + context.getResources().getResourceTypeName(drawableId)
            + '/' + context.getResources().getResourceEntryName(drawableId) );
    return imageUri;
}

based on above - tweaked version for any resource:

 /**
 * get uri to any resource type
 * @param context - context
 * @param resId - resource id
 * @throws Resources.NotFoundException if the given ID does not exist.
 * @return - Uri to resource by given id 
 */
public static final Uri getUriToResource(@NonNull Context context, @AnyRes int resId) throws Resources.NotFoundException {
    /** Return a Resources instance for your application's package. */
    Resources res = context.getResources();
    /**
     * Creates a Uri which parses the given encoded URI string.
     * @param uriString an RFC 2396-compliant, encoded URI
     * @throws NullPointerException if uriString is null
     * @return Uri for this given uri string
     */
    Uri resUri = Uri.parse(ContentResolver.SCHEME_ANDROID_RESOURCE +
            "://" + res.getResourcePackageName(resId)
            + '/' + res.getResourceTypeName(resId)
            + '/' + res.getResourceEntryName(resId));
    /** return uri */
    return resUri;
}

some info:

From the Java Language spec.:

"17.5 Final Field Semantics

... when the object is seen by another thread, that thread will always
see the correctly constructed version of that object's final fields.
It will also see versions of any object or array referenced by
those final fields that are at least as up-to-date as the final fields
are."

In that same vein, all non-transient fields within Uri
implementations should be final and immutable so as to ensure true
immutability for clients even when they don't use proper concurrency
control.

For reference, from RFC 2396:

"4.3. Parsing a URI Reference

   A URI reference is typically parsed according to the four main
   components and fragment identifier in order to determine what
   components are present and whether the reference is relative or
   absolute.  The individual components are then parsed for their
   subparts and, if not opaque, to verify their validity.

   Although the BNF defines what is allowed in each component, it is
   ambiguous in terms of differentiating between an authority component
   and a path component that begins with two slash characters.  The
   greedy algorithm is used for disambiguation: the left-most matching
   rule soaks up as much of the URI reference string as it is capable of
   matching.  In other words, the authority component wins."

The "four main components" of a hierarchical URI consist of
<scheme>://<authority><path>?<query>
share|improve this answer
    
awesome it works. thank you – Ajay Shrestha Mar 31 at 18:55

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.