Quantum Meets Statistical-Physical Secrecy: A Novel Hybrid Key Distribution Architecture

Fuente: arXiv
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Main Author: Basar, Ertugrul
Format: Preprint
Published: 2026
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author Basar, Ertugrul
author_facet Basar, Ertugrul
contents This letter proposes a novel hybrid key distribution architecture that jointly exploits quantum key distribution (QKD) and Kirchhoff-law-Johnson-noise (KLJN) statistical-physical key exchange. In the proposed system, an optical BB84-type QKD link operates in coordination with a parallel wired KLJN link, which is used for secure basis handling and, in selected protocols, additional raw key generation. Three novel KLJN-assisted QKD protocols are introduced to eliminate public basis disclosure messages and bit sifting, extract basis-derived key bits, or generate raw key bits under ideal KLJN assumptions. Analytical expressions for the normalized key rate and absolute throughput are derived by accounting for optical channel penalties, KLJN bandwidth constraints, and synchronization bottlenecks. Numerical results show that the proposed hybrid architecture can improve key generation efficiency and throughput in short-haul infrastructures, including metropolitan area networks (MANs) and data center interconnects.
format Preprint
id arxiv_https___arxiv_org_abs_2605_15247
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Quantum Meets Statistical-Physical Secrecy: A Novel Hybrid Key Distribution Architecture
Basar, Ertugrul
Quantum Physics
Cryptography and Security
Information Theory
This letter proposes a novel hybrid key distribution architecture that jointly exploits quantum key distribution (QKD) and Kirchhoff-law-Johnson-noise (KLJN) statistical-physical key exchange. In the proposed system, an optical BB84-type QKD link operates in coordination with a parallel wired KLJN link, which is used for secure basis handling and, in selected protocols, additional raw key generation. Three novel KLJN-assisted QKD protocols are introduced to eliminate public basis disclosure messages and bit sifting, extract basis-derived key bits, or generate raw key bits under ideal KLJN assumptions. Analytical expressions for the normalized key rate and absolute throughput are derived by accounting for optical channel penalties, KLJN bandwidth constraints, and synchronization bottlenecks. Numerical results show that the proposed hybrid architecture can improve key generation efficiency and throughput in short-haul infrastructures, including metropolitan area networks (MANs) and data center interconnects.
title Quantum Meets Statistical-Physical Secrecy: A Novel Hybrid Key Distribution Architecture
topic Quantum Physics
Cryptography and Security
Information Theory
url https://arxiv.org/abs/2605.15247