问题
I am using Javas UUID and need to convert a UUID to a byte Array. Strangely the UUID Class does not provide a "toBytes()" method.
I already found out about the two methods:
UUID.getMostSignificantBits()
and
UUID.getLeasSignificantBits()
But how to get this into a byte array? the result should be a byte[] with those tow values. I somehow need to do Bitshifting but, how?
update:
I found:
ByteBuffer byteBuffer = MappedByteBuffer.allocate(2);
byteBuffer.putLong(uuid.getMostSignificantBits());
byteBuffer.putLong(uuid.getLeastSignificantBits());
Is this approach corret?
Are there any other methods (for learning purposes)?
Thanks very much!! Jens
回答1:
You can use ByteBuffer
byte[] bytes = new byte[16];
ByteBuffer bb = ByteBuffer.wrap(bytes);
bb.order(ByteOrder.LITTLE_ENDIAN or ByteOrder.BIG_ENDIAN);
bb.putLong(UUID.getMostSignificantBits());
bb.putLong(UUID.getLeastSignificantBits());
// to reverse
bb.flip();
UUID uuid = new UUID(bb.getLong(), bb.getLong());
回答2:
One option if you prefer "regular" IO to NIO:
ByteArrayOutputStream baos = new ByteArrayOutputStream();
DataOutputStream dos = new DataOutputStream(baos);
dos.write(uuid.getMostSignificantBits());
dos.write(uuid.getLeastSignificantBits());
dos.flush(); // May not be necessary
byte[] data = dos.toByteArray();
回答3:
For anyone trying to use this in Java 1.7, I found the following to be necessary:
<!-- language: lang-java -->
ByteArrayOutputStream baos = new ByteArrayOutputStream();
DataOutputStream dos = new DataOutputStream(baos);
dos.writeLong(password.getMostSignificantBits());
dos.writeLong(password.getLeastSignificantBits());
dos.flush(); // May not be necessary
return baos.toByteArray();
来源:https://stackoverflow.com/questions/6881659/how-to-convert-two-longs-to-a-byte-array-how-to-convert-uuid-to-byte-array