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Statistically-Secure Bit Commitment and Coin Flipping Protocols Based on Quantum Hardware Assumptions

Quantum Physics 2026-08-11 v1 Cryptography and Security

Abstract

Bit commitment is impossible to achieve with unconditional security, even in quantum cryptogra- phy. We show that statistically secure bit commitment, satisfying both hiding and binding, can be constructed from hybrid locked physical unclonable functions (HLPUFs), a hardware primitive that combines classical hardware tokens and quantum communication. Our protocol uses these hardware assumptions in a novel and non-trivial way to achieve the first mistrustful two-party cryptographic protocol based on hybrid hardware modules. We prove statistical hiding and binding under natu- ral assumptions on the HLPUF and using a carefully designed challenge generation algorithm as a subroutine of our bit-commitment protocol. The construction also yields the first hardware-based coin-flipping protocol. Our results suggest a new paradigm for secure two-party cryptography in quantum networks, combining rigorous security guarantees with a concrete route toward practical implementation.

Keywords

Cite

@article{arxiv.2608.11187,
  title  = {Statistically-Secure Bit Commitment and Coin Flipping Protocols Based on Quantum Hardware Assumptions},
  author = {Roo Dunnill and Mina Doosti},
  journal= {arXiv preprint arXiv:2608.11187},
  year   = {2026}
}

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21 pages, 0 figures