Convert short to byte[] in Java
How can I convert a short
(2 bytes) to a byte array in Java, e.g.
short x = 233;
byte[] ret = new byte[2];
...
it should be something like this. But not sure.
((0xFF << 8) & x) >> 0;
E开发者_JAVA技巧DIT:
Also you can use:
java.nio.ByteOrder.nativeOrder();
To discover to get whether the native bit order is big or small. In addition the following code is taken from java.io.Bits
which does:
- byte (array/offset) to boolean
- byte array to char
- byte array to short
- byte array to int
- byte array to float
- byte array to long
- byte array to double
And visa versa.
ret[0] = (byte)(x & 0xff);
ret[1] = (byte)((x >> 8) & 0xff);
A cleaner, albeit far less efficient solution is:
ByteBuffer buffer = ByteBuffer.allocate(2);
buffer.putShort(value);
return buffer.array();
Keep this in mind when you have to do more complex byte transformations in the future. ByteBuffers are very powerful.
An alternative that is more efficient:
// Little Endian
ret[0] = (byte) x;
ret[1] = (byte) (x >> 8);
// Big Endian
ret[0] = (byte) (x >> 8);
ret[1] = (byte) x;
Figured it out, its:
public static byte[] toBytes(short s) {
return new byte[]{(byte)(s & 0x00FF),(byte)((s & 0xFF00)>>8)};
}
Short to bytes convert method In Kotlin works for me:
fun toBytes(s: Short): ByteArray {
return byteArrayOf((s.toInt() and 0x00FF).toByte(), ((s.toInt() and 0xFF00) shr (8)).toByte())
}
Several methods have been mentioned here. But which one is the best? Here follows some proof that the following 3 approaches result in the same output for all values of a short
// loops through all the values of a Short
short i = Short.MIN_VALUE;
do
{
// method 1: A SIMPLE SHIFT
byte a1 = (byte) (i >> 8);
byte a2 = (byte) i;
// method 2: AN UNSIGNED SHIFT
byte b1 = (byte) (i >>> 8);
byte b2 = (byte) i;
// method 3: SHIFT AND MASK
byte c1 = (byte) (i >> 8 & 0xFF);
byte c2 = (byte) (i & 0xFF);
if (a1 != b1 || a1 != c1 ||
a2 != b2 || a2 != c2)
{
// this point is never reached !!
}
} while (i++ != Short.MAX_VALUE);
Conclusion: less is more ?
byte b1 = (byte) (s >> 8);
byte b2 = (byte) s;
(As other answers have mentioned, watch out for LE/BE).
It depends how you want to represent it:
big endian or little endian? That will determine which order you put the bytes in.
Do you want to use 2's complement or some other way of representing a negative number? You should use a scheme that has the same range as the short in java to have a 1-to-1 mapping.
For big endian, the transformation should be along the lines of: ret[0] = x/256; ret[1] = x%256;
public short bytesToShort(byte[] bytes) {
return ByteBuffer.wrap(bytes).order(ByteOrder.LITTLE_ENDIAN).getShort();
}
public byte[] shortToBytes(short value) {
byte[] returnByteArray = new byte[2];
returnByteArray[0] = (byte) (value & 0xff);
returnByteArray[1] = (byte) ((value >>> 8) & 0xff);
return returnByteArray;
}
short to byte
short x=17000;
byte res[]=new byte[2];
res[i]= (byte)(((short)(x>>7)) & ((short)0x7f) | 0x80 );
res[i+1]= (byte)((x & ((short)0x7f)));
byte to short
short x=(short)(128*((byte)(res[i] &(byte)0x7f))+res[i+1]);
精彩评论