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I am trying to convert a byte value to binary for data transfer. Basically, I am sending a value like "AC" in binary ("10101100") in a byte array where "10101100" is a single byte. I want to be able to receive this byte and convert it back into "10101100." As of now I have no success at all dont really know where to begin. Any help would be great.

edit: sorry for all the confusion I didnt realize that I forgot to add specific details.

Basically I need to use a byte array to send binary values over a socket connection. I can do that but I dont know how to convert the values and make them appear correctly. Here is an example:

I need to send the hex values ACDE48 and be able to interpret it back. According to documentation, I must convert it to binary in the following way: byte [] b={10101100,11011110,01001000}, where each place in the array can hold 2 values. I then need to convert these values back after they are sent and received. I am not sure how to go about doing this.

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2  
What do you mean "binary"? All values are stored in binary (as they're sitting in transistors with a 1 or 0 state anyway). There's no way you really want an ASCII string of "10101100", is there?! –  Jonathon Reinhart Jul 17 '12 at 18:48
1  
You want a string with the value "10101100" or you want a byte variable containing that number? –  Affe Jul 17 '12 at 18:49
1  
Tangential question: Do you have a reason why you're hand-rolling your own binary serialisation instead of using one of the great many standard formats that come with library support? –  millimoose Jul 17 '12 at 18:50
1  
@Lion: In what way? 0xAC == binary 10101100. –  Jon Skeet Jul 17 '12 at 18:51
1  
@Lion I think you're taking the quotes too literally. 0xAC == 0b10101100 –  Bohemian Jul 17 '12 at 18:52

2 Answers 2

up vote 6 down vote accepted
String toBinary( byte[] bytes )
{
    StringBuilder sb = new StringBuilder(bytes.length * Byte.SIZE);
    for( int i = 0; i < Byte.SIZE * bytes.length; i++ )
        sb.append((bytes[i / Byte.SIZE] << i % Byte.SIZE & 0x80) == 0 ? '0' : '1');
    return sb.toString();
}

byte[] fromBinary( String s )
{
    int sLen = s.length();
    byte[] toReturn = new byte[(sLen + Byte.SIZE - 1) / Byte.SIZE];
    char c;
    for( int i = 0; i < sLen; i++ )
        if( (c = s.charAt(i)) == '1' )
            toReturn[i / Byte.SIZE] = (byte) (toReturn[i / Byte.SIZE] | (0x80 >>> (i % Byte.SIZE)));
        else if ( c != '0' )
            throw new IllegalArgumentException();
    return toReturn;
}

There are some simpler ways to handle this also.

Integer.parseInt(hex, 16);
Integer.parseInt(binary, 2);

and

Integer.toHexString(byte).subString((Integer.SIZE - Byte.SIZE) / 4);
Integer.toBinaryString(byte).substring(Integer.SIZE - Byte.SIZE);
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You should at least specify how the order of the bits in the string relate to the order of the bits in the byte array, especially as your order seems non-standard. You can actually write fromBinary() without if statements which should speed up your code a bit. StringBuilder can be made ready for the correct size by supplying the size in the constructor (bytes.length * Byte.SIZE). Finally, your fromBinary does accept invalid strings, e.g. digit of value '2' is translated into a zero valued bit. –  Maarten Bodewes - owlstead Jul 17 '12 at 19:46
    
I am confused as to why you believe that the bit order is non-standard. It is MSB first, however due to the fact that bytes are signed you will have issues with decimal representation if the MSB is set. I also added almost everything you mentioned. –  LINEMAN78 Jul 17 '12 at 23:48
    
It's MSB for each byte, with the lowest index first. So you would have the lowest order byte first, with the highest order bit first. This is fine, but I would document such things carefully (but I'm a PITA regarding such details). Nice of you to make the changes! –  Maarten Bodewes - owlstead Jul 17 '12 at 23:58
    
I don't see where endianness comes in here. The bytes are never combined, therefore I am unclear on where you are getting that the lowest order bit is first. –  LINEMAN78 Jul 18 '12 at 0:57
    
You can still order the bytes from left to right or from right to left, can't you? –  Maarten Bodewes - owlstead Jul 18 '12 at 7:20

For converting hexidecimal into binary, you can use BigInteger to simplify your code.

public static void sendHex(OutputStream out, String hexString) throws IOException {
    byte[] bytes = new BigInteger("0" + hexString, 16).toByteArray();
    out.write(bytes, 1, bytes.length-1);
}

public static String readHex(InputStream in, int byteCount) throws IOException {
    byte[] bytes = new byte[byteCount+1];
    bytes[0] = 1;
    new DataInputStream(in).readFully(bytes, 1, byteCount);
    return new BigInteger(0, bytes).toString().substring(1);
}

Bytes are sent as binary without translation. It fact its the only type which doesn't require some form of encoding. As such there is nothing to do.

To write a byte in binary

OutputStream out = ...
out.write(byteValue);

InputStream in = ...
int n = in.read();
if (n >= 0) {
   byte byteValue = (byte) n;
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1  
i think the OP is also confused how the hex string "ACDE48" maps to an array of bytes. –  jtahlborn Jul 17 '12 at 19:27

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