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I know: Never do your own crypto.

But this question is just theoretical.

Assume you do a Diffie-Hellmann Key Exchange with a server to produce a shared secret x. Then use a cryptographic hash function like sha3 to generate a pseudorandom bitstream like this: p_i = sha3(x||p_(i-1)).

To encrypt the data simply xor all outgoing packets with the corresponding p_i. I realize that the key stream for otp must be completely random to assure the unbreakability, but would this scheme at least be as hard to break as the underlying hash function or the DH?

In my opinion it should be, but I'm new to crypto so please prove me wrong :)

Since the shared secret is only used for one session and assuming the hash function is a random oracle no keystream is ever used twice. By including x in every p_i an attacker has to break (not only find a collision) the first sent packet in order to decrypt the rest of the session, breaking any other packet will most likely be a collision and not give away the needed x, only the content of this packet. Also, breaking any packet requires at least plaintext knowledge but it gives you only this particular hash, not the previous/next hashes.

Thanks,

Zap

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Questions about cryptography that do not include an implementation problem are off-topic for Stack Overflow. You may wish to consider posting this at crypto.stackexchange.com. –  Duncan Jul 8 '13 at 13:05
    
Thanks for the info, I posted the question on crypto.stackexchange –  Zap Jul 8 '13 at 16:09
    
It will probably be secure, in the context of privacy, but you need to add MAC to such encryption to ensure integrity. However such scheme will be much slower than AES in CTR mode. While AES operates at speeds faster than 1 C/B on CPUs that have ISA support, the method you suggest would operate slower than 40 C/B. –  Vlad Krasnov Jul 9 '13 at 12:49

2 Answers 2

You have devised yet another Stream Cypher. Will it work? Probably yes, if correctly implemented. Will it be secure? Almost certainly not. To be secure the OTP requires a key as long as the plaintext. Unless your shared secret is as long as the plaintext your cypher is vulnerable to brute force. It will probably have other vulnerabilities as well.

ETA: You might want to research Bernstein's Snuffle cypher as well.

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Read this link there is security analysis of such construction.

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