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I have a sha-160 computation that gives me a 160 bit hash of my data, but I expect this is way larger than necessary. So I'm thinking I could truncate the resulting hash down to say the low 64 bits and use that.

Does taking the low 64 bits of a sha-160 hash computation give a reasonably random 64 bit hash?

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So, you will gain 12 bytes? For what kind of application is it? –  ypercube Mar 23 '11 at 0:43
    
In cases like this, rather than truncate, I prefer to XOR-fold. In both cases the analyzed cypto-properties of the SHA-160 should be considered to be "tossed away". In the folding method, all the bits are used in some fashion, however. In both cases if the SHA-160 is considered to be uniformly distributed, doubt it makes a difference. The number of unique values in 64-bits is still quite ... large ... but not so sure if I'd use it as a guarantee-no-collisions method. –  user166390 Mar 23 '11 at 1:00
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@pst There's really no need to fold - as long as the underlying hash is secure, any subset of bits is sufficient. If the hash isn't secure, folding isn't likely to help you much. –  Nick Johnson Mar 23 '11 at 1:08

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Part of what it means for something to be a good hash is that any fixed subset of its bits is also (so far as possible, given how many bits) a good hash. The low 64 bits of a SHA-160 hash should be a good 64-bit hash, in so far as there is such a thing.

Note that for some purposes 64 bits really isn't all that many. For instance, if anything breaks in your application when someone finds two different things with the same hash, you probably want something longer: on average it will only take a modest number of billions of trials to find two things with the same 64-bit hash, no matter what your hashing algorithm.

What bad thing would happen if you just used all 160 bits?

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Indeed - a 64 bit hash has, at best, only 32 bits of security, which is another way of saying "none at all". –  caf Mar 23 '11 at 1:19
    
@caf "32 bits of security"? –  user166390 Mar 23 '11 at 2:12
    
@pst, here, 32 bits of security means it only takes about average 2^32 tries to find a collision on a perfect 64 bit hash. See en.wikipedia.org/wiki/Birthday_attack –  Theran Mar 23 '11 at 2:43
    
@pst: The log base 2 of the number of basic operations required in a bruteforce attack. –  caf Mar 23 '11 at 8:06
    
The 64 bit has is on a subset of the data, I then also have a 256 bit hash on the whole data. The purpose of the 64 bit hash is to quickly identify issues most of the time mid-stream in the work. The final 256 hash if failing provides greater assurance that all is well. –  WilliamKF Jan 16 '13 at 16:36

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