English

Quantifying the Leakage of Quantum Protocols for Classical Two-Party Cryptography

Quantum Physics 2015-01-08 v1 Cryptography and Security

Abstract

We study quantum protocols among two distrustful parties. By adopting a rather strict definition of correctness - guaranteeing that honest players obtain their correct outcomes only - we can show that every strictly correct quantum protocol implementing a non-trivial classical primitive necessarily leaks information to a dishonest player. This extends known impossibility results to all non-trivial primitives. We provide a framework for quantifying this leakage and argue that leakage is a good measure for the privacy provided to the players by a given protocol. Our framework also covers the case where the two players are helped by a trusted third party. We show that despite the help of a trusted third party, the players cannot amplify the cryptographic power of any primitive. All our results hold even against quantum honest-but-curious adversaries who honestly follow the protocol but purify their actions and apply a different measurement at the end of the protocol. As concrete examples, we establish lower bounds on the leakage of standard universal two-party primitives such as oblivious transfer.

Keywords

Cite

@article{arxiv.1501.01549,
  title  = {Quantifying the Leakage of Quantum Protocols for Classical Two-Party Cryptography},
  author = {Louis Salvail and Christian Schaffner and Miroslava Sotakova},
  journal= {arXiv preprint arXiv:1501.01549},
  year   = {2015}
}

Comments

38 pages, completely supersedes arXiv:0902.4036

R2 v1 2026-06-22T07:53:54.049Z