11

I'm getting this exception:

Exception: java.lang.IllegalStateException: Can't copy a recycled bitmap

My code is:

    int width = bitmap.getWidth();
    int height = bitmap.getHeight();
    int newWidth;
    int newHeight;
    if (width >= height) {
        newWidth = Math.min(width,1024);
        newHeight = (int) (((float)newWidth)*height/width);
    }
    else {
        newHeight = Math.min(height, 1024);
        newWidth = (int) (((float)newHeight)*width/height);
    }
    float scaleWidth = ((float)newWidth)/width;
    float scaleHeight = ((float)newHeight)/height;

    Matrix matrix = new Matrix();
    matrix.postScale(scaleWidth, scaleHeight);
    switch (orientation) {
    case 3:
        matrix.postRotate(180);
        break;
    case 6:
        matrix.postRotate(90);
        break;
    case 8:
        matrix.postRotate(270);
        break;
    }
    Bitmap resizedBitmap = Bitmap.createBitmap(bitmap, 0, 0, width, height, matrix, true);
    bitmap.recycle();
    try {
        bitmap = resizedBitmap.copy(resizedBitmap.getConfig(), true);
    }
    catch (Exception e) {
        Log.v(TAG,"Exception: "+e);
    }

If the exception is telling me that I've recycled resizedBitmap, that is patently false! What am I doing wrong??

4
  • It is likely that when you assign into resizedBitmap, it requires the original and is still tied to it.
    – cdeszaq
    Commented Jan 30, 2012 at 22:19
  • You've got to be kidding! You mean createBitmap does not create a totally new bitmap that is different from 'bitmap'?? WTF. Commented Jan 30, 2012 at 23:08
  • it would be usefull if the logcat is attached for stack trace...don't catch the exception... Commented Jan 30, 2012 at 23:46
  • yes, createBitmap can return the source bitmap: // 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; }
    – 3dmg
    Commented Aug 22, 2018 at 11:51

2 Answers 2

14

You are actually calling bitmap.recycle(); after this line:

Bitmap resizedBitmap = Bitmap.createBitmap(bitmap, 0, 0, width, height, matrix, true);
9
  • Did you read the last line of the OP? He indicates that the exception says he recycled resizedBitmap.
    – cdeszaq
    Commented Jan 30, 2012 at 22:20
  • Exactly. Which he said he isn't doing, but he clearly does. The exception clearly states the problem.
    – bschultz
    Commented Jan 30, 2012 at 22:22
  • I think the issue is that the code should copy the bitmap and then recycle it, based on the order of the expressions. The fact that the runtime seems to do them out of order is, I believe, the source of confusion.
    – cdeszaq
    Commented Jan 30, 2012 at 22:25
  • Also, the copy that is throwing the error is the one within the try{ block, which is attempting to copy resizedBitmap and store it in bitmap, and is not trying to copy bitmap.
    – cdeszaq
    Commented Jan 30, 2012 at 22:26
  • 3
    Okay, I accept the answer. It's idiotic, but what can you do? At least, it works. Commented Jan 30, 2012 at 23:57
8

Quote from Bitmap.createBitmap() method's Javadoc:

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.

That mean that in some cases, i.e. when asking to resize a source bitmap to its actual size, there will be no difference between source and resized bitmap. To save memory the method will just return the same instance of bitmap.

To fix your code you should check whether a new bitmap has been created:

Bitmap resizedBitmap = Bitmap.createBitmap(sourceBitmap, 0, 0, width, height, matrix, true);
if (resizedBitmap != sourceBitmap) {
    sourceBitmap.recycle();
}

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