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I have a whole folder structure that I want to copy from my assets folder. However, the mContext.getAssets().open() seems to only want a filename so that it can return an InputStream, which is only suitable for copying a single file. What I need is a File made from the folder in my assets folder so that I can recurse through all the files and folders and copy them all.

Does anybody know how to get the path to the assets folder so that I can create a File object?

Edit: After some study it appears that you can't access files in the assets/ and raw/ folders with absolute paths to be able to create a File object. It probably has to do with the encryption of the app package. I hope someone can prove me wrong though!

Final edit: I ended up creating an array of strings to hold the extra asset files:

   private static final String[] DEFAULT_ALBUM_FILES =
   {INTRO_TO_FLASHUM_DIR+"03 Never Can Say Goodbye.m4a",
    INTRO_TO_FLASHUM_DIR+"11 Bossa Baroque.m4a",
    INTRO_TO_FLASHUM_DIR+"intro fling.3gp"};

I then iterated through this copying each file individually using the mContext.getAssets().open() to get the InputStream. I don't think it is currently possible to iterate through a folder in the assets using normal File operations.

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What have you tried? See: wiseandroid.com/post/2010/06/14/… –  f20k May 2 '11 at 18:55
    
Yes, this describes exactly what I did. –  cdavidyoung May 23 '11 at 13:58

3 Answers 3

Could you move the folder to your /raw folder? Then you could use:

 com.your.package:raw/yourFile

Like this:

int resourceId = context.getResources().getIdentifier("com.your.package:raw/somefile.txt");
File f = new File(context.getResources().openRawResource(resourceId));

And here's someone doing it with the assets folder:

Android Assets with sub folders

  InputStream is = getAssets().open("subfolder/somefile.txt");
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This looks promising. I'm going to give it a try. I'll get back with the results. Thanks! –  cdavidyoung May 2 '11 at 19:21
    
The raw folder also does not appear to allow absolute path references. As least I have not been able to figure it out... –  cdavidyoung May 2 '11 at 20:01
    
Sure edited answer –  Blundell May 2 '11 at 21:08
    
The problem is that openRawResource() returns an InputStream and there does not seem to be a way to convert the latter to a File. With your code I get the following error: The constructor File(InputStream) is undefined. –  cdavidyoung May 4 '11 at 3:07
    
Ah thats because I short-cut this answer :-) Once you have the IS, you then create your File and loop round the IS feeding it into the file. This might not be the best example: roseindia.net/java/java-conversion/InputstreamToFile.shtml but gives you a hint –  Blundell May 4 '11 at 9:40
         AssetManager am = con.getAssets();//u have get assets path from this ocde

         InputStream inputStream = null;

         inputStream = am.open("file.xml");

or

  String file_name="ur.xml"

 inputStream = am.open("foldername/"+ur);
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Use file:///android_asset for accessing the asset folder and then you can always give your subfolder there.

AssetManager assetManager = null;   // null ???  Get the AssetManager here.
        AssetFileDescriptor assetFileDescriptor = null;
        try{
           assetFileDescriptor = assetManager.openFd("file:///android_asset/yourfolder/file");
                FileDescriptor fd = assetFileDescriptor.getFileDescriptor();
       } catch (Exception e){}
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I am afraid I don't understand how to use "file:///android_asset". Can you put this in the form of "File file = new File(...);"? –  cdavidyoung May 2 '11 at 19:21
    
Get the assetmanager, get the assetfiledescriptor , get the filedescriptor from assetfiledescriptor. –  yogsma May 2 '11 at 20:16
7  
But then how do you convert a FileDescriptor to a File? –  cdavidyoung May 4 '11 at 3:11
    
David - did you get an answer to this? if yes, please post. ty. –  Kyle Clegg Mar 28 '12 at 16:11
    
Don't think it's possible. –  superarts.org Jul 12 '12 at 4:47

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