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I was thinking about this problem to myself previously, and came up with the question:

"Theoretically, isn't it possible that a hash function of say, X random bytes, when hashed, would be considered vulnerable since NULL bytes in any character array would be interpreted as the end of a string in C? And therefore as an attacker we may ignore that character (and possibly others) within our initial string to brute force?"

Sorry if I'm not very clear on this.

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You can't blame a totally unrelated hash function if you're treating a fixed-length buffer as 0-terminated. –  Erik Mar 7 '11 at 1:27

2 Answers 2

up vote 4 down vote accepted

The output of hash functions is typically a fixed-length array of bytes (or machine words); it should be interpreted as a fixed-length array, not as a zero-delimited string.

The solution is to use memcmp(3) in your code instead of strcmp(3).

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Ahhhh! Ok. Silly me, why didn't I think of that?! I suppose strcmp() is also vulnerable to timing attacks anyway. Doh! –  atx Mar 7 '11 at 1:27
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@malfy You can also have a timing attack with memcmp if the algorithm exits early when it finds a mismatch. See rdist.root.org/2009/05/28/… –  Tadmas Mar 7 '11 at 18:31

Hash functions do not produce string (character based) output. They produce (fixed-length) byte arrays. You can convert that to Base64 or Base16 if you want, then you have a string (which will never contain a null byte, just 00).

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