Quantum-Safe Identity Verification using Relativistic Zero-Knowledge Proof Systems

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Ma, Yao, Kon, Wen Yu, Chu, Jefferson, Loh, Kevin Han Yong, Chakraborty, Kaushik, Lim, Charles
Format: Preprint
Published: 2025
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866911066042138624
author Ma, Yao
Kon, Wen Yu
Chu, Jefferson
Loh, Kevin Han Yong
Chakraborty, Kaushik
Lim, Charles
author_facet Ma, Yao
Kon, Wen Yu
Chu, Jefferson
Loh, Kevin Han Yong
Chakraborty, Kaushik
Lim, Charles
contents Identity verification is the process of confirming an individual's claimed identity, which is essential in sectors like finance, healthcare, and online services to ensure security and prevent fraud. However, current password/PIN-based identity solutions are susceptible to phishing or skimming attacks, where malicious intermediaries attempt to steal credentials using fake identification portals. Alikhani et al. [Nature, 2021] began exploring identity verification through graph coloring-based relativistic zero-knowledge proofs (RZKPs), a key cryptographic primitive that enables a prover to demonstrate knowledge of secret credentials to a verifier without disclosing any information about the secret. Our work advances this field and addresses unresolved issues: From an engineering perspective, we relax further the relativistic constraints from 60m to 30m, and significantly enhance the stability and scalability of the experimental demonstration of the 2-prover graph coloring-based RZKP protocol for near-term use cases. At the same time, for long-term security against entangled malicious provers, we propose a modified protocol with comparable computation and communication costs, we establish an upper bound on the soundness parameter for this modified protocol. On the other hand, we extend the two-prover, two-verifier setup to a three-prover configuration, demonstrating the security of such relativistic protocols against entangled malicious provers.
format Preprint
id arxiv_https___arxiv_org_abs_2507_14324
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Quantum-Safe Identity Verification using Relativistic Zero-Knowledge Proof Systems
Ma, Yao
Kon, Wen Yu
Chu, Jefferson
Loh, Kevin Han Yong
Chakraborty, Kaushik
Lim, Charles
Cryptography and Security
Quantum Physics
Identity verification is the process of confirming an individual's claimed identity, which is essential in sectors like finance, healthcare, and online services to ensure security and prevent fraud. However, current password/PIN-based identity solutions are susceptible to phishing or skimming attacks, where malicious intermediaries attempt to steal credentials using fake identification portals. Alikhani et al. [Nature, 2021] began exploring identity verification through graph coloring-based relativistic zero-knowledge proofs (RZKPs), a key cryptographic primitive that enables a prover to demonstrate knowledge of secret credentials to a verifier without disclosing any information about the secret. Our work advances this field and addresses unresolved issues: From an engineering perspective, we relax further the relativistic constraints from 60m to 30m, and significantly enhance the stability and scalability of the experimental demonstration of the 2-prover graph coloring-based RZKP protocol for near-term use cases. At the same time, for long-term security against entangled malicious provers, we propose a modified protocol with comparable computation and communication costs, we establish an upper bound on the soundness parameter for this modified protocol. On the other hand, we extend the two-prover, two-verifier setup to a three-prover configuration, demonstrating the security of such relativistic protocols against entangled malicious provers.
title Quantum-Safe Identity Verification using Relativistic Zero-Knowledge Proof Systems
topic Cryptography and Security
Quantum Physics
url https://arxiv.org/abs/2507.14324