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How to do bitwise XOR operation to two strings in java.

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2  
You need to refine your question. What result are you expecting? May you provide an example? –  ChrisJ Feb 26 '11 at 11:31
2  
I am interested in what you want to achive. Maybe some kind of encryption? :) –  Daniel Feb 26 '11 at 11:33
    
yes.i want to encrypt and get another string. –  yasitha Feb 26 '11 at 11:35
    
you can use Java Cryptography API download.oracle.com/javase/1.5.0/docs/guide/security/jce/… –  Dead Programmer Feb 26 '11 at 12:37
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6 Answers

Note: this only works for low characters i.e. below 0x8000, This works for all ASCII characters.

I would do an XOR each charAt() to create a new String. Like

String s, key;

StringBuilder sb = new StringBuilder();
for(int i = 0; i < s.length(); i++)
    sb.append((char)(s.charAt(i) ^ key.charAt(i % key.length())));
String result = sb.toString();

In response to @user467257's comment

If your input/output is utf-8 and you xor "a" and "æ", you are left with an invalid utf-8 string consisting of one character (decimal 135, a continuation character).

It is the char values which are being xor'ed, but the byte values and this produces a character whichc an be UTF-8 encoded.

public static void main(String... args) throws UnsupportedEncodingException {
    char ch1 = 'a';
    char ch2 = 'æ';
    char ch3 = (char) (ch1 ^ ch2);
    System.out.println((int) ch3 + " UTF-8 encoded is " + Arrays.toString(String.valueOf(ch3).getBytes("UTF-8")));
}

prints

135 UTF-8 encoded is [-62, -121]
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That's assuming both strings are of the same length... –  t0mm13b Jul 26 '12 at 17:10
    
I check for i<s1.length() && i<s2.length() so the strings don't have to be the same length. The string produced will be the shortest length. –  Peter Lawrey Jul 26 '12 at 19:02
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Firstly, the string produced is not properly xor'd in the sense that you cannot get your original string back by xor'ing it with the key again (unless your key was guaranteed to be equal to or longer than the messages which would be very strange) making the code completely misrepresent the concept of xor'ing. Secondly, you are not guaranteed to get valid string bytes by simply xoring characters, so your output string may contain invalid byte sequences. –  user467257 Nov 12 '12 at 10:26
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@user467257 I think you are confusing char and byte which are not the same thing. I have updated my answer with a reply to your comment. –  Peter Lawrey Nov 15 '12 at 16:16
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I deleted my two comments because there were too many inaccuracies. I think "insertion" of the extra byte effectively happens at the point of casting to a char because the char will be pointing at the codepoint with the two byte utf-8 representation). I think I can come up with a better example of failure of char wise xoring though, will think about it over the weekend. –  user467257 Nov 16 '12 at 9:35
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Pay attention:

A Java char corresponds to a UTF-16 code unit, and in some cases two consecutive chars (a so-called surrogate pair) are needed for one real Unicode character (codepoint).

XORing two valid UTF-16 sequences (i.e. Java Strings char by char, or byte by byte after encoding to UTF-16) does not necessarily give you another valid UTF-16 string - you may have unpaired surrogates as a result. (It would still be a perfectly usable Java String, just the codepoint-concerning methods could get confused, and the ones that convert to other encodings for output and similar.)

The same is valid if you first convert your Strings to UTF-8 and then XOR these bytes - here you quite probably will end up with a byte sequence which is not valid UTF-8, if your Strings were not already both pure ASCII strings.

Even if you try to do it right and iterate over your two Strings by codepoint and try to XOR the codepoints, you can end up with codepoints outside the valid range (for example, U+FFFFF (plane 15) XOR U+10000 (plane 16) = U+1FFFFF (which would the last character of plane 31), way above the range of existing codepoints. And you could also end up this way with codepoints reserved for surrogates (= not valid ones).

If your strings only contain chars < 128, 256, 512, 1024, 2048, 4096, 8192, 16384, or 32768, then the (char-wise) XORed strings will be in the same range, and thus certainly not contain any surrogates. In the first two cases you could also encode your String as ASCII or Latin-1, respectively, and have the same XOR-result for the bytes. (You still can end up with control chars, which may be a problem for you.)


What I'm finally saying here: don't expect the result of encrypting Strings to be a valid string again - instead, simply store and transmit it as a byte[] (or a stream of bytes). (And yes, convert to UTF-8 before encrypting, and from UTF-8 after decrypting).

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what Java is using internally is irrelevant. As a user you can either access each char (with surrogates issues of course) or each codepoint. Whether Java uses internally UTF-16 or the colors of the moonboots little fearies are wearing has nothing to do with the question. –  SyntaxT3rr0r Feb 26 '11 at 14:06
    
@SyntaxT3rr0r: Okay, maybe not optimally worded, I'm trying to edit this. –  Paŭlo Ebermann Feb 26 '11 at 21:41
    
@SyntaxT3rr0r: XORing by codepoint does not help, either (see example now in the answer). –  Paŭlo Ebermann Feb 26 '11 at 22:05
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+1 - I agree with Paulo. XOR-ing is liable destroy the properties that make a Java String a valid UTF-16 String. If you do that, they become impossible to encode / decode. –  Stephen C Feb 26 '11 at 22:53
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You want something like this:

import sun.misc.BASE64Decoder;
import sun.misc.BASE64Encoder;
import java.io.IOException;

public class StringXORer {

    public String encode(String s, String key) {
        return base64Encode(xorWithKey(s.getBytes(), key.getBytes()));
    }

    public String decode(String s, String key) {
        return new String(xorWithKey(base64Decode(s), key.getBytes()));
    }

    private byte[] xorWithKey(byte[] a, byte[] key) {
        byte[] out = new byte[a.length];
        for (int i = 0; i < a.length; i++) {
            out[i] = (byte) (a[i] ^ key[i%key.length]);
        }
        return out;
    }

    private byte[] base64Decode(String s) {
        try {
            BASE64Decoder d = new BASE64Decoder();
            return d.decodeBuffer(s);
        } catch (IOException e) {throw new RuntimeException(e);}
    }

    private String base64Encode(byte[] bytes) {
        BASE64Encoder enc = new BASE64Encoder();
        return enc.encode(bytes).replaceAll("\\s", "");

    }
}

The base64 encoding is done because xor'ing the bytes of a string may not give valid bytes back for a string.

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This is producing great results for me, thanks! –  n.collins Feb 11 at 15:14
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Assuming (!) the strings are of equal length, why not convert the strings to byte arrays and then XOR the bytes. The resultant byte arrays may be of different lengths too depending on your encoding (e.g. UTF8 will expand to different byte lengths for different characters).

You should be careful to specify the character encoding to ensure consistent/reliable string/byte conversion.

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The strings could be of equal length but the byte arrays might be of different lengths. ;) –  Peter Lawrey Feb 26 '11 at 11:33
    
Very good point. I shall amend accordingly. –  Brian Agnew Feb 26 '11 at 11:34
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If you have "$".getBytes() it could be 1 byte, "£" could be 2 bytes and "€" could be 3 bytes. (They are in UTF-8) –  Peter Lawrey Apr 17 '12 at 8:54
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@PeterLawrey Thank you! Have a nice day! –  artaxerxe Apr 17 '12 at 9:18
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To clarify, code points in Java can be between 0 (Character.MIN_CODE_POINT) and 0x10FFFF (Character.MAX_CODE_POINT) –  Peter Lawrey Apr 17 '12 at 9:52
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This is the code I'm using:

private static byte[] xor(final byte[] input, final byte[] secret) {
    final byte[] output = new byte[input.length];
    if (secret.length == 0) {
        throw new IllegalArgumentException("empty security key");
    }
    int spos = 0;
    for (int pos = 0; pos < input.length; ++pos) {
        output[pos] = (byte) (input[pos] ^ secret[spos]);
        ++spos;
        if (spos >= secret.length) {
            spos = 0;
        }
    }
    return output;
}
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the abs function is when the Strings are not the same length so the legth of the result will be the same as the min lenght of the two String a and b

  public String xor(String a,String b){
     StringBuilder sb = new StringBuilder();
   for(int k=0;k<a.length();k++)
   sb.append((a.charAt(k) ^ b.charAt(k+(Math.abs(a.length()-b.length()))))) ;
           String result;
             result = sb.toString();
   return result;
    }
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