25

I have a video file in the raw folder in my resources. I want to find the size of the file. I have this piece of code:

Uri filePath = Uri.parse("android.resource://com.android.FileTransfer/" + R.raw.video);
                File videoFile = new File(filePath.getPath());
                Log.v("LOG", "FILE SIZE "+videoFile.length());

But it always gives me that the size is 0. What am I doing wrong?

5 Answers 5

24

Try this lines:

InputStream ins = context.getResources().openRawResource (R.raw.video)
int videoSize = ins.available();
5
  • Same question / comment than I just posted under @EboMike's answer. Never had any problem this way??
    – psycho
    Oct 8, 2012 at 7:40
  • 3
    What openRawResource() returns is not a normal InputStream but an AssetInputStream. This subclass overrides available() and is able to provide reliable information.
    – caw
    Feb 6, 2013 at 22:44
  • @MarcoW. Umm, not according to the documentation: developer.android.com/reference/android/content/res/… Nov 2, 2013 at 14:58
  • 1
    @goldilocks: Well, yes! If you take a look at the documentation for InputStream.available(), you'll see that this is where the explanation comes from. AssetInputStream uses exactly the same text in its JavaDoc: developer.android.com/reference/java/io/… But the source shows that AssetInputStream.available() overrides the superclass's method and gets its result from a native method: grepcode.com/file/repository.grepcode.com/java/ext/…
    – caw
    Nov 3, 2013 at 1:39
  • @MarcoW. I don't doubt that or the fact that it there are implementations (currently including android) where it works. But if your standard is what the API actually commits to, then the API doesn't commit to this. If it doesn't work tomorrow on some device, it will be your fault for trusting in something basic programming principles say you should not! Also, there is a safe, by the book method -- see shem's answer. That's the canonical one, IMO. Nov 3, 2013 at 9:19
24

Try this:

AssetFileDescriptor sampleFD = getResources().openRawResourceFd(R.raw.video);
long size = sampleFD.getLength()
2
16

You can't use File for resources. Use Resources or AssetManager to get an InputStream to the resource, then call the available() method on it.

Like this:

InputStream is = context.getResources().openRawResource(R.raw.nameOfFile);
int sizeOfInputStram = is.available(); // Get the size of the stream
2
  • 14
    Never had a problem with this one?! This method is supposed to return an estimated number of bytes that can be read, not necessarily the real file size, and the documentation clearly discourages its use... developer.android.com/reference/java/io/…
    – psycho
    Oct 8, 2012 at 7:40
  • 6
    Well, the documentation refers to generic streams that may take a while to retrieve data, like network streams. In a resource, the exact size is always known and available.
    – EboMike
    Oct 9, 2012 at 0:04
10

Slight variation to the answer by @shem

AssetFileDescriptor afd = contentResolver.openAssetFileDescriptor(fileUri,"r");
long fileSize = afd.getLength();
afd.close();

Where fileUri is of type Android Uri

2

Reuseable Kotlin Extensions

You can call these on a context or activity. They are exception safe

fun Context.assetSize(resourceId: Int): Long =
    try {
        resources.openRawResourceFd(resourceId).length
    } catch (e: Resources.NotFoundException) {
        0
    }

This one is not as good as the first, but may be required in certain cases

fun Context.assetSize(resourceUri: Uri): Long {
    try {
        val descriptor = contentResolver.openAssetFileDescriptor(resourceUri, "r")
        val size = descriptor?.length ?: return 0
        descriptor.close()
        return size
    } catch (e: Resources.NotFoundException) {
        return 0
    }
}

If you'd like a simple way to get a different byte representation, you can use these

val Long.asKb get() = this.toFloat() / 1024
val Long.asMb get() = asKb / 1024
val Long.asGb get() = asMb / 1024 

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