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I have two strings that are hashed into a ulong (using Google's CityHash) during separate processing stages and now must combine the two hashes into a new hash without significantly increasing the risk of a hash collision.

I know that XOR has some issues (such as Value ^ 0 = Value), but given that the two input values should already be well distributed, I suspect that I can combine the hashes like

ulong hash = hash1 ^ hash2; // hash1 and hash2 are ulong hashes of strings

Is there something wrong in this approach, or is there a better approach that does not add significant computational overhead?

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Why is this tagged cryptography? My spidey-sense is tingling! –  Nik Bougalis Dec 10 '12 at 20:01
    
@NikBougalis: Because the hash should meet cryptographic standards of distribution. No worries, I'm not confusing encryption and hashing :-) –  Eric J. Dec 10 '12 at 20:05
    
Just makin' sure ;) –  Nik Bougalis Dec 11 '12 at 0:28
    
@NikBougalis: Yeah I have a little "how are hashing and encrypting different" snippet on hand because that topic comes up so often. –  Eric J. Dec 11 '12 at 1:18
    
You don't really want cryptographic hashes, and that's good because CityHash doesn't give it to you. XORing two CityHashes should be perfectly fine. –  GregS Dec 11 '12 at 3:13

2 Answers 2

The boost library does this in a fairly simple way.

You would probably need to calculate the golden number at 64 bits.

The computation would be:

ulong hash = hash1 ^ ( hash2 + 0x9e3779b9 + (hash1 << 6) + (hash1 >> 2);

The number 0x9e3779b9 is 2^32/phi I believe. Phi is the golden ratio. The division by an irrational number tries to add "randomness" in a deterministic fashion.

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This isn't bad, but again this short of thing should not be used anywhere where a cryptographically secure hash is desired. –  Nik Bougalis Dec 11 '12 at 0:28
    
Why the left and right shifting of hash1? Is that amount of shift appropriate for a 64-bit number? Do you have a reference for the "boost" way? –  Eric J. Dec 11 '12 at 1:20
    
up vote 1 down vote accepted

Based on @GregS's comments and my own further reading, I believe I'm not seriously degrading the hash distribution by using a simple XOR.

That is the approach that seems wisest.

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Well, it depends. If you want the result for "ab" to be the same as for "ba", it's Ok. If you want them to be different than you'll at least have to shift/multiply one of the partners. –  wildplasser Dec 13 '12 at 1:01
    
@wildplasser: Given the otherwise strongish hash distribution, I think that is a non-issue. That's much more likely to be an issue when the to operands have a usual range much smaller than the size of the hash (e.g. when hashing the X,Y coordinate on the screen/a graph). –  Eric J. Dec 13 '12 at 2:49

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