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java.nio.ByteBuffer#duplicate() returns a new byte buffer that shares the old buffer's content. Changes to the old buffer's content will be visible in the new buffer, and vice versa. What if I want a deep copy of the byte buffer?

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6 Answers 6

I think the deep copy need not involve byte[]. Try the following:

public static ByteBuffer clone(ByteBuffer original) {
       ByteBuffer clone = ByteBuffer.allocate(original.capacity());
       original.rewind();//copy from the beginning
       clone.put(original);
       original.rewind();
       clone.flip();
       return clone;
}
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Why do I need to flip the clone? Then the limit is lower than my real capacity –  Karussell Jun 16 '12 at 13:23
    
WOW! That was helpful.THanks! –  Michael IV Aug 31 '12 at 14:54
    
The only thing not copied in this case is the mark, so just know that if you use mark it will be lost. Also, this function only copies from the beginning to the limit and the position of original is lost, I would suggest setting position = 0 and limit = capacity and storing them as temp vars to be reset on original and clone before returning. Also rewind discards the mark so using that is probably not a good idea. I will post an answer with a more complete method. –  LINEMAN78 Nov 20 '12 at 3:01
    
Very useful, thanks. I think it would be better if you left the original ByteBuffer unchanged though, so int start = original.position() at the start, and original.position(start) at the end. –  Eric Lindauer Nov 19 '13 at 22:11
    
Just have a chance to review this answer I made a few years ago. It is a good point about not to touch the position. If the original is reset to its initial position, should the clone be set to the same position as well? I expect people who want a clone want the clone be in position 0 so that it is ready for use right away, otherwise will get confused. I indeed expect the clone() method will set the original to the end position, but diff ppl has diff expectation. Perhaps its better to keep it simple, people who need a better solution can go for LINEMAN78's more comprehensive answer. –  mingfai Jan 13 at 3:22
public static ByteBuffer copy(ByteBuffer b) {
    byte[] oldBytes = b.array();
    byte[] copiedBytes = new byte[oldBytes.length];
    // (Object src, int srcPos, Object dest, int destPos, int length) 
    System.arraycopy(oldBytes, 0, copiedBytes, 0, oldBytes.length);
    ByteBuffer duplicate = ByteBuffer.wrap(copiedBytes);
    return duplicate;
}

should work, but haven't tested it.

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2  
ByteBuffer may not be backed by an array, so array() may not work. –  mingfai Nov 1 '10 at 23:56
    
Good call - I hadn't considered that possibility –  I82Much Nov 2 '10 at 4:08

Based off of mingfai's solution:

This will give you an almost true deep copy. The only thing lost will be the mark. If orig is a HeapBuffer and the offset is not zero or the capacity is less than the backing array than the outlying data is not copied.

public static ByteBuffer deepCopy( ByteBuffer orig )
{
    int pos = orig.position(), lim = orig.limit();
    try
    {
        orig.position(0).limit(orig.capacity()); // set range to entire buffer
        ByteBuffer toReturn = deepCopyVisible(orig); // deep copy range
        toReturn.position(pos).limit(lim); // set range to original
        return toReturn;
    }
    finally // do in finally in case something goes wrong we don't bork the orig
    {
        orig.position(pos).limit(lim); // restore original
    }
}

public static ByteBuffer deepCopyVisible( ByteBuffer orig )
{
    int pos = orig.position();
    try
    {
        ByteBuffer toReturn;
        // try to maintain implementation to keep performance
        if( orig.isDirect() )
            toReturn = ByteBuffer.allocateDirect(orig.remaining());
        else
            toReturn = ByteBuffer.allocate(orig.remaining());

        toReturn.put(orig);
        toReturn.order(orig.order());

        return (ByteBuffer) toReturn.position(0);
    }
    finally
    {
        orig.position(pos);
    }
}
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Why do you need the class name check when Buffer#isDirect() is available publicly? –  seh Nov 20 '12 at 15:50
    
Good point, forgot about that method. Will update. –  LINEMAN78 Nov 21 '12 at 2:04

As this question still comes up as one of the first hits to copying a ByteBuffer, I will offer my solution. This solution does not touch the original buffer, including any mark set, and will return a deep copy with the same capacity as the original.

public static ByteBuffer cloneByteBuffer(final ByteBuffer original) {
    // Create clone with same capacity as original.
    final ByteBuffer clone = (original.isDirect()) ?
        ByteBuffer.allocateDirect(original.capacity()) :
        ByteBuffer.allocate(original.capacity());

    // Create a read-only copy of the original.
    // This allows reading from the original without modifying it.
    final ByteBuffer readOnlyCopy = original.asReadOnlyBuffer();

    // Flip and read from the original.
    readOnlyCopy.flip();
    clone.put(readOnlyCopy);

    return clone;
}

If one cares for the position and limit to be set the same as the original, then that's an easy addition to the above:

clone.position(original.position());
clone.limit(original.limit());
return clone;
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1  
Why not clone.put(readOnlyCopy) instead of the intermediate byte array? –  seh Jan 27 at 19:34
    
@seh Because I was silly and did not see that method. Thanks for pointing it out. –  jdmichal Jan 27 at 19:43

You'll need to iterate the entire buffer and copy by value into the new buffer.

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3  
There's an (optional) overload of the put method that does this for you though. –  nos Jul 29 '10 at 21:08
    
Woohoo! I learned something new. –  Kylar Jul 29 '10 at 22:11

You will have to use System.arraycopy to duplicate the values of the buffer to the new buffer

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