How do I convert Long to byte[] and back in java

问题

How do I convert a long to a byte[] and back in Java? I\'m trying convert a long to a byte[] so that I will be able to send the byte[] over a tcp connection. On the other side I want to take that byte[] and convert it back into a double. Any tips would be appreciated.

回答1:

public byte[] longToBytes(long x) {
    ByteBuffer buffer = ByteBuffer.allocate(Long.BYTES);
    buffer.putLong(x);
    return buffer.array();
}

public long bytesToLong(byte[] bytes) {
    ByteBuffer buffer = ByteBuffer.allocate(Long.BYTES);
    buffer.put(bytes);
    buffer.flip();//need flip 
    return buffer.getLong();
}

Or wrapped in a class to avoid repeatedly creating ByteBuffers:

public class ByteUtils {
    private static ByteBuffer buffer = ByteBuffer.allocate(Long.BYTES);    

    public static byte[] longToBytes(long x) {
        buffer.putLong(0, x);
        return buffer.array();
    }

    public static long bytesToLong(byte[] bytes) {
        buffer.put(bytes, 0, bytes.length);
        buffer.flip();//need flip 
        return buffer.getLong();
    }
}

---

Since this is getting so popular, I just want to mention that I think you're better off using a library like Guava in the vast majority of cases. And if you have some strange opposition to libraries, you should probably consider this answer first for native java solutions. I think the main thing my answer really has going for it is that you don't have to worry about the endian-ness of the system yourself.

回答2:

You could use the Byte conversion methods from Google Guava.

Example:

byte[] bytes = Longs.toByteArray(12345L);

回答3:

I tested the ByteBuffer method against plain bitwise operations but the latter is significantly faster.

public static byte[] longToBytes(long l) {
    byte[] result = new byte[8];
    for (int i = 7; i >= 0; i--) {
        result[i] = (byte)(l & 0xFF);
        l >>= 8;
    }
    return result;
}

public static long bytesToLong(byte[] b) {
    long result = 0;
    for (int i = 0; i < 8; i++) {
        result <<= 8;
        result |= (b[i] & 0xFF);
    }
    return result;
}

回答4:

Why do you need the byte[]? why not just write it to the socket?

I assume you mean long rather than Long, the latter needs to allow for null values.

DataOutputStream dos = new DataOutputStream(
     new BufferedOutputStream(socket.getOutputStream()));
dos.writeLong(longValue);

DataInputStream dis = new DataInputStream(
     new BufferedInputStream(socket.getInputStream()));
long longValue = dis.readLong();

回答5:

If you are looking for a fast unrolled version, this should do the trick, assuming a byte array called "b" with a length of 8:

byte[] -> long

long l = ((long) b[7] << 56)
       | ((long) b[6] & 0xff) << 48
       | ((long) b[5] & 0xff) << 40
       | ((long) b[4] & 0xff) << 32
       | ((long) b[3] & 0xff) << 24
       | ((long) b[2] & 0xff) << 16
       | ((long) b[1] & 0xff) << 8
       | ((long) b[0] & 0xff);

long -> byte[] as an exact counterpart to the above

byte[] b = new byte[] {
       (byte) lng,
       (byte) (lng >> 8),
       (byte) (lng >> 16),
       (byte) (lng >> 24),
       (byte) (lng >> 32),
       (byte) (lng >> 40),
       (byte) (lng >> 48),
       (byte) (lng >> 56)};

回答6:

Just write the long to a DataOutputStream with an underlying ByteArrayOutputStream. From the ByteArrayOutputStream you can get the byte-array via toByteArray():

class Main
{

        public static byte[] long2byte(long l) throws IOException
        {
        ByteArrayOutputStream baos=new ByteArrayOutputStream(Long.SIZE/8);
        DataOutputStream dos=new DataOutputStream(baos);
        dos.writeLong(l);
        byte[] result=baos.toByteArray();
        dos.close();    
        return result;
        }


        public static long byte2long(byte[] b) throws IOException
        {
        ByteArrayInputStream baos=new ByteArrayInputStream(b);
        DataInputStream dos=new DataInputStream(baos);
        long result=dos.readLong();
        dos.close();
        return result;
        }


        public static void main (String[] args) throws java.lang.Exception
        {

         long l=123456L;
         byte[] b=long2byte(l);
         System.out.println(l+": "+byte2long(b));       
        }
}

Works for other primitives accordingly.

Hint: For TCP you do not need the byte[] manually. You will use a Socket socket and its streams

OutputStream os=socket.getOutputStream(); 
DataOutputStream dos=new DataOutputStream(os);
dos.writeLong(l);
//etc ..

instead.

回答7:

You could use the implementation in org.apache.hadoop.hbase.util.Bytes http://hbase.apache.org/apidocs/org/apache/hadoop/hbase/util/Bytes.html

The source code is here:

http://grepcode.com/file/repository.cloudera.com/content/repositories/releases/com.cloudera.hbase/hbase/0.89.20100924-28/org/apache/hadoop/hbase/util/Bytes.java#Bytes.toBytes%28long%29

Look for the toLong and toBytes methods.

I believe the software license allows you to take parts of the code and use it but please verify that.

回答8:

 public static long bytesToLong(byte[] bytes) {
        if (bytes.length > 8) {
            throw new IllegalMethodParameterException("byte should not be more than 8 bytes");

        }
        long r = 0;
        for (int i = 0; i < bytes.length; i++) {
            r = r << 8;
            r += bytes[i];
        }

        return r;
    }



public static byte[] longToBytes(long l) {
        ArrayList<Byte> bytes = new ArrayList<Byte>();
        while (l != 0) {
            bytes.add((byte) (l % (0xff + 1)));
            l = l >> 8;
        }
        byte[] bytesp = new byte[bytes.size()];
        for (int i = bytes.size() - 1, j = 0; i >= 0; i--, j++) {
            bytesp[j] = bytes.get(i);
        }
        return bytesp;
    }

回答9:

I will add another answer which is the fastest one possible ׂ(yes, even more than the accepted answer), BUT it will not work for every single case. HOWEVER, it WILL work for every conceivable scenario:

You can simply use String as intermediate. Note, this WILL give you the correct result even though it seems like using String might yield the wrong results AS LONG AS YOU KNOW YOU'RE WORKING WITH "NORMAL" STRINGS. This is a method to increase effectiveness and make the code simpler which in return must use some assumptions on the data strings it operates on.

Con of using this method: If you're working with some ASCII characters like these symbols in the beginning of the ASCII table, the following lines might fail, but let's face it - you probably will never use them anyway.

Pro of using this method: Remember that most people usually work with some normal strings without any unusual characters and then the method is the simplest and fastest way to go.

from Long to byte[]:

byte[] arr = String.valueOf(longVar).getBytes();

from byte[] to Long:

long longVar = Long.valueOf(new String(byteArr)).longValue();

回答10:

If you are already using an OutputStream to write to the socket, then DataOutputStream might be a good fit. Here is an example:

// Assumes you are currently working with a SocketOutputStream.

SocketOutputStream outputStream = ...
long longValue = ...

DataOutputStream dataOutputStream = new DataOutputStream(outputStream);

dataOutputStream.writeLong(longValue);
dataOutputStream.flush();

There are similar methods for short, int, float, etc. You can then use DataInputStream on the receiving side.

来源：https://stackoverflow.com/questions/4485128/how-do-i-convert-long-to-byte-and-back-in-java