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A device I am trying to communicate with takes ASCII 7-bit characters with even parity. When trying to convert a UTF-8 character I cast it to an integer then to a binary string. check the string and then set the parity bit if needed.

However when converting it back using Byte.parseByte I get a NumberFormatError if the signed bit is set. How can I get round this?

public byte addParity(byte b){
    int a = (int)b;
    int c = 0;
    String s = Integer.toBinaryString(a);
    for(int i=0; i!=(8-s.length());)
    {
        s = "0" +s;
    }

    for(int i=0; i<s.length(); i++){

        if(s.substring(i, i+1).equals("1"))c++;
    }
    if(c%2==0)return b;
    else return Byte.parseByte(("1"+s.substring(1)),2);         

}
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You cannot convert UTF-8 to ASCII 7 bits because UTF-8 is 8 bits while ASCII is 7. You're losing information. –  m0skit0 Feb 29 '12 at 15:25

2 Answers 2

up vote 1 down vote accepted

You are getting the error because Byte.parseByte refuses to parse values out of the range of byte (-128..127). So it refuses to parse something like "10001011" which is 139 in decimal. A quick fix could be using Integer.parseInt instead and casting the result to byte:

else return (byte) Integer.parseInt(("1"+s.substring(1)),2);

I'd however step back and redo the whole thing with bitwise arithmetic.

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To set one bit it should be enough to do something like:

return (byte) (b | 0x80);
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