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Just look at lower part now

Ive seen on here before ways to convert hex to binary, but my question is that is it possible to convert hex values inside of a byte array into binary values and put it into a big string!?

The code ive been working on so far is:

    public static void main (String[] args){

    byte [] ex;
    ex = new byte [] {(byte)0xFF, (byte)0x11, (byte)0xEE, (byte)0x22, (byte)0xDD, (byte)0x33, (byte)0xCC, (byte)0x44};
    printByteArray(ex);

}

public static void printByteArray(byte [] array)


{
    System.out.print("[  ");
    for(int i = 0; i < array.length; i++)
    {
        System.out.print(Integer.toHexString((array[i]>>4)&0x0F).toUpperCase());
        System.out.print(Integer.toHexString(array[i]&0x0F).toUpperCase() + "  ");
    }
    System.out.println( "]");
}

what i want is to change is to be able to put the whole binary string into a byte array. like get the binary values for each hex number then put it all into on HUGE byte array

any help plz and thanks!

EDITED

Okay well im going with the first one it doesnt matter all that much i guess how long they are, they were still correct. But now could you just help me take and use that string. I have this code :

**  public static void main (String[] args){

    String binary;
    byte [] ex;
    ex = new byte [] {(byte)0xFF, (byte)0x11, (byte)0xEE, (byte)0x22, (byte)0xDD, (byte)0x33, (byte)0xCC, (byte)0x44};
    printByteArray(ex);
    binary = hexToBin(ex);
    System.out.println(binary);

}

public static String hexToBin(byte [] array)
{
    String binStr = null;
    for(int i = 0; i < array.length; i++){
        binStr.append(Integer.toBinaryString(array[i]));
    }
    return binStr;
}**

but due to the fact of how i initialized the string (at first) my output has null in it. Any ideas how to fix that? Also i just changed it to append and now idk why but wont let me use it?

share|improve this question

Would Integer.toBinaryString give you what you want?

http://docs.oracle.com/javase/6/docs/api/java/lang/Integer.html#toBinaryString(int)

public static void printByteArray(byte [] array)
{
    System.out.print("[  ");
    for(int i = 0; i < array.length; i++)
    {
        System.out.print(Integer.toBinaryString(array[i]));
    }
    System.out.println( "]");
}
share|improve this answer
    
close, but do you know how come there would be a ton of 1's printed out, like i was expecting 64 1's or 0's but there is probable twice that – erp Feb 28 '13 at 0:15

Try this (note that byte is 8 bit not 16 as you seem to suggest above, which may be part of the confusion, for 16 bits you would want a short and 32 would be int)

public class PrintBytes {

  public static void printByteArray(byte [] array)

  {
    System.out.print("[ ");
    for (byte anArray : array) {
      byte b = anArray;
      for (int j = 0; j < 8; j++) {
        System.out.print((b & 128) < 1 ? "0" : "1");
        b <<= 1;
      }
      System.out.print(" ");
    }
    System.out.println( "]");
  }

  public static void main(String[] args) {
    printByteArray(new byte[] {64, 32, -1});
  }
}
share|improve this answer

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