35

I have one big byte[] array and lot of small byte arrays ( length of big array is sum of lengths small arrays). Is there maybe some quick method to copy one array to another from starting position to ending, not to use for loop for every byte manually ?

0
59

You can use a ByteBuffer.

ByteBuffer target = ByteBuffer.wrap(bigByteArray);
target.put(small1);
target.put(small2);
...;
4
  • Pretty sure this'd use a similar code internally as was suggested by other answers. Upvoted, it's usually better to use a built-in method than re-invent the wheel. – cthulhu Jan 28 '11 at 11:42
  • Downvoted. This doesn't account for the case where the final length of the big array is unknown at the time the first partial arrays are delivered. – Mark Jeronimus Nov 14 '13 at 14:25
  • 2
    @Zom-B the question starts of with "I have one big byte array" so it looked like the size of the array is alread known beforehand. – josefx Nov 15 '13 at 12:54
  • Use ByteBuffer.allocate(size), if you need array of given size, but don't have it yet. Then, invoke target.getArray() after all target.put() invocations. – Evgeny Veretennikov Aug 22 '17 at 12:12
24

Use System.arraycopy().

You could also apply the solution from a previous answer of mine. Note that for primitive types such as byte you'll have to produce separate versions (one for each primitive type), as generics don't work there.

4
  • +1 for your previous answer. It will also work for primitive types, if you let it accept to Object parameters instead of two T[]s. But that does of course mean there's no compile-time checking. – Sean Patrick Floyd Jan 28 '11 at 11:37
  • 1
    @Sean: unfortunately there's no Arrays.copyOf() that takes an Object. – Joachim Sauer Jan 28 '11 at 11:39
  • argh, confused that with System.arrayCopy() – Sean Patrick Floyd Jan 28 '11 at 11:40
  • seems weird this is a System method! – Dori Mar 21 '14 at 13:23
13

Or you could use a ByteArrayOutputStream (Although it creates the resulting array for you, rather than copying into an existing array as you asked).

public byte[] concatenateByteArrays(List<byte[]> blocks) {
    ByteArrayOutputStream os = new ByteArrayOutputStream();
    for (byte[] b : blocks) {
        os.write(b, 0, b.length);
    }
    return os.toByteArray();
}
1
6

Sample Implementation

public static void copySmallArraysToBigArray(final byte[][] smallArrays,
    final byte[] bigArray){
    int currentOffset = 0;
    for(final byte[] currentArray : smallArrays){
        System.arraycopy(
            currentArray, 0,
            bigArray, currentOffset,
            currentArray.length
        );
        currentOffset += currentArray.length;
    }
}

Test Code

public static void main(final String[] args){
    final byte[][] smallArrays =
        {
           "The"    .getBytes(),
           " Quick" .getBytes(),
           " Brown" .getBytes(),
           " Fox"   .getBytes()
        };
    final byte[] bigArray = "The Small Mauve Cat".getBytes();
    copySmallArraysToBigArray(smallArrays, bigArray);
    System.out.println(new String(bigArray));
}

Output:

The Quick Brown Fox

2
  • I'd remove the check and the throwing of the exception, because System.arraycopy() already throws an IndexOutOfBoundsException when the indices are out of bounds (and that exception gives a bit more information as well). – Joachim Sauer Jan 28 '11 at 11:35
  • @sean: please use getBytes(Charset.forName("ASCII")) or similar in next samples (as getBytes() depends on the runtime system for the character encoding) – Maarten Bodewes Oct 27 '11 at 12:46
2

Here is another solution which also uses ByteBuffer:

public static byte[] toByteArray(List<byte[]> bytesList)
{
    int size = 0;

    for (byte[] bytes : bytesList)
    {
        size += bytes.length;
    }

    ByteBuffer byteBuffer = ByteBuffer.allocate(size);

    for (byte[] bytes : bytesList)
    {
        byteBuffer.put(bytes);
    }

    return byteBuffer.array();
}

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