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I'm using the following code to obfuscate a passcode for a test app of mine.

    - (NSString *)obfuscate:(NSString *)string withKey:(NSString *)key
{
    // Create data object from the string
    NSData *data = [string dataUsingEncoding:NSUTF8StringEncoding];

    // Get pointer to data to obfuscate
    char *dataPtr = (char *) [data bytes];

    // Get pointer to key data
    char *keyData = (char *) [[key dataUsingEncoding:NSUTF8StringEncoding] bytes];

    // Points to each char in sequence in the key
    char *keyPtr = keyData;
    int keyIndex = 0;

    // For each character in data, xor with current value in key
    for (int x = 0; x < [data length]; x++)
    {
        // Replace current character in data with
        // current character xor'd with current key value.
        // Bump each pointer to the next character
        *dataPtr = *dataPtr++ ^ *keyPtr++;

        // If at end of key data, reset count and
        // set key pointer back to start of key value
        if (++keyIndex == [key length])
            keyIndex = 0, keyPtr = keyData;
    }

    return [[NSString alloc] initWithData:data encoding:NSUTF8StringEncoding];
}

This works like a charm with all strings, but i've ran into a bit of a problem comparing the following results

NSLog([[self obfuscate:@"0000", @"maki"]); //Returns 0]<W

NSLog([[self obfuscate:@"0809", @"maki"]); //Returns 0]<W

As you can see, the two strings with numbers in, while different, return the same result! Whats gone wrong in the code i've attached to result in the same result for these two numbers?

Another example:

NSLog([self obfuscate:@"8000" withKey:@"maki"]); //Returns 8U4_
NSLog([self obfuscate:@"8290" withKey:@"maki"]); //Returns 8U4_ as well

I may be misunderstanding the concept of obfuscation, but I was under the impression that each unique string returns a unique obfuscated string!

Please help me fix this bug/glitch Source of Code: http://iosdevelopertips.com/cocoa/obfuscation-encryption-of-string-nsstring.html

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There's definitely something wrong with your implementation: I rewrote your code in C, and got different results for "0000","maki" and "0809","maki" (see demo here). –  dasblinkenlight Aug 16 '13 at 23:21

2 Answers 2

up vote 4 down vote accepted

The problem is your last line. You create the new string with the original, unmodified data object.

You need to create a new NSData object from the modified dataPtr bytes.

NSData *newData = [NSData dataWithBytes:dataPtr length:data.length];
return [[NSString alloc] initWithData:newData encoding:NSUTF8StringEncoding];

But you have some bigger issues.

  1. The calls to bytes returns a constant, read-only reference to the bytes in the NSData object. You should NOT be modifying that data.
  2. The result of your XOR on the character data could, in theory, result in a byte stream that is no longer a valid UTF-8 encoded string.
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I'm testing it out now, do these two issues affect the result of the program in any way? –  H Bellamy Aug 16 '13 at 23:08
    
Sure. Your app could crash or give a nil result. –  rmaddy Aug 16 '13 at 23:08

The obfuscation algorithm that you have selected is based on XORing the data and the "key" values together. Generally, this is not very strong. Moreover, since XOR is symmetric, the results are very prone to producing duplicates.

Although your implementation is currently broken, fixing it would not be of much help in preventing the algorithm from producing identical results for different data: it is relatively straightforward to construct key/data pairs that produce the same obfuscated string - for example,

[self obfuscate:@"0123" withKey:@"vwxy"]
[self obfuscate:@"pqrs" withKey:@"6789"]

will produce identical results "FFJJ", even though both the strings and the keys look sufficiently different.

If you would like to "obfuscate" your strings in a cryptographically strong way, use a salted secure hash algorithm: it will produce very different results for even slightly different strings.

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This is all excellent feedback but it's not actually an answer to the question. Perhaps this should be a comment. –  rmaddy Aug 16 '13 at 23:11
    
@rmaddy I agree that this answer does not fix the OP's implementation. However, the algorithm is "broken" in a much more fundamental way - I provided more details in an edit. –  dasblinkenlight Aug 16 '13 at 23:45

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