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In the following program I'm converting a hex String "0123456789ABCDEF" into binary.

public static void main(String[] args) {
    // TODO Auto-generated method stub
    String key = "0123456789ABCDEF"; //hexadecimal key
    char[] keyCharArray = key.toCharArray();
    for (int i = 0; i < key.length(); i++) {
        System.out.print(HexToBinary((keyCharArray[i]))+",");
    }
}

public static String HexToBinary(char Hex) {
    int i = Integer.parseInt(Character.toString(Hex), 16);
    String Bin = Integer.toBinaryString(i);
    return Bin;
}

I'm getting the following output

0,1,10,11,100,101,110,111,1000,1001,1010,1011,1100,1101,1110,1111,

but i require the output to be as follows

0000,0001,0010,0011,0100,0101,0110,0111,1000,1001,1010,1011,1100,1101,1110,1111,

one way I found is appending 0x in front of each hex character. as follows:

0x0, 0x1, 0x2,............,0xE,0xF

another way is to manually check how many characters the output is short of 4, and append those many 0's to it. But I do not know how to implement the former in the above code. Is there any efficient method to do what im trying to do above?

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3 Answers 3

up vote 3 down vote accepted

You can always do a static lookup:

private static String[] staticLookup = new String[]
    {0000,0001,0010,0011,0100,0101,0110,0111,
     1000,1001,1010,1011,1100,1101,1110,1111};


public static String HexToBinary(char Hex) {
    return staticLookup[Integer.parseInt(Character.toString(Hex), 16)];
}
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+1 Nice! No need to complicate things –  gtgaxiola Sep 22 '12 at 17:24
    
Thanks, both answers are correct as per my requirements, but i'd rather go for the efficient one, Thanks :) –  vineetrok Sep 22 '12 at 17:38
String.format("%04d", yournumber);

To Be clear:

public static String HexToBinary(char Hex) {
    int i = Integer.parseInt(Character.toString(Hex), 16);
    return String.format("%04d", Integer.parseInt(Integer.toBinaryString(i)));
}
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He doesn't have a number, he has a string. So, String.format("%04s", Bin). –  João Mendes Sep 22 '12 at 16:46
1  
This will create the String from the number with padding. Check his HexToBinary() method where he creates int i –  gtgaxiola Sep 22 '12 at 16:47
    
@Joao Oh, you meant the variable "yournumber", I was just giving a general case of the method()... –  gtgaxiola Sep 22 '12 at 16:51
1  
toBinaryString returns a String, not a number, so I think that'll throw an exception, I think. Replace your ds with ss and you're golden. :) –  João Mendes Sep 22 '12 at 16:53
    
thanks. But, either way it throws java.util.FormatFlagsConversionMismatchException exception –  vineetrok Sep 22 '12 at 16:58

simply use a switch to determine the number of missing zeros:

switch(i){
    case 0: case 1: return "000" + Integer.toBinaryString(i);
    case 2: case 3: return "00" + Integer.toBinaryString(i);
    case 4: case 5: case 6: case 7:  return "0" + Integer.toBinaryString(i);
    default: return Integer.toBinaryString(i);
}
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