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According documentation Bitmap createBitmap (Bitmap source, int x, int y, int width, int height, Matrix m, boolean filter) method :

Returns an immutable bitmap from subset of the source bitmap, transformed by the optional matrix. The new bitmap may be the same object as source, or a copy may have been made. It is initialized with the same density as the original bitmap. If the source bitmap is immutable and the requested subset is the same as the source bitmap itself, then the source bitmap is returned and no new bitmap is created.

I've got a method that applies orientation to existed bitmap:

private Bitmap getOrientedPhoto(Bitmap bitmap, int orientation) {
        int rotate = 0;
        switch (orientation) {
            case ORIENTATION_ROTATE_270:
                rotate = 270;
                break;
            case ORIENTATION_ROTATE_180:
                rotate = 180;
                break;
            case ORIENTATION_ROTATE_90:
                rotate = 90;
                break;
            default:
                return bitmap;
        }

        int w = bitmap.getWidth();
        int h = bitmap.getHeight();
        Matrix mtx = new Matrix();
        mtx.postRotate(rotate);
        return Bitmap.createBitmap(bitmap, 0, 0, w, h, mtx, true);
    }

I'm calling it from here:

Bitmap tmpPhoto = BitmapFactory.decodeFile(inputPhotoFile.getAbsolutePath(), tmpOpts);
Bitmap orientedPhoto = getOrientedPhoto(tmpPhoto, orientation);

I've checked that tmpPhoto is immutable but getOrientedPhoto() still returns mutable image which is copy of tmpPhoto. Does anyone knows how to use Bitmap.createBitmap() without creating new bitmap object and what's wrong with my code?

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2  
I would guess that a new object is always created when he bitmap is transformed by a matrix. If the original is immutable, how could it transform the original object? –  Daniel Fischer Sep 20 '12 at 11:01
    
I second Daniel. That's what I am reading out of the definition. It is only the same instance if and only if there is no change, i.e. in the case when the call would be unnecessary anyway. –  Fildor Sep 20 '12 at 11:03
    
have you checked OrientedPhoto with isMutable () method to be sure it is mutable or not? –  Amit Deshpande Sep 20 '12 at 11:15
    
Yes, I've checked and it's mutable. I believe Daniel Fischer is right. But I'm still trying to find how really createBitmap() works –  birdy Sep 20 '12 at 11:22

1 Answer 1

up vote 4 down vote accepted

Seems like it's really just unclear documentation for this method. I've found this code in Bitmap crateBitmap() method:

// check if we can just return our argument unchanged
if (!source.isMutable() && x == 0 && y == 0 && width == source.getWidth() &&
    height == source.getHeight() && (m == null || m.isIdentity())) {
    return source;
}

This means that source bitmap are returning back only in case if it's immutable and no transformations required.

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