Routing and Wavelength Assignment with Minimal Attack Radius for QKD Networks

Fuente: arXiv
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Main Authors: Li, Mengyao, Zhang, Qiaolun, Yang, Zongshuai, Bregni, Stefano, Gatto, Alberto, Boutaba, Raouf, Tornatore, Massimo
Format: Preprint
Published: 2025
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_version_ 1866913991548207104
author Li, Mengyao
Zhang, Qiaolun
Yang, Zongshuai
Bregni, Stefano
Gatto, Alberto
Boutaba, Raouf
Tornatore, Massimo
author_facet Li, Mengyao
Zhang, Qiaolun
Yang, Zongshuai
Bregni, Stefano
Gatto, Alberto
Boutaba, Raouf
Tornatore, Massimo
contents Quantum Key Distribution (QKD) can distribute keys with guaranteed security but remains susceptible to key exchange interruption due to physical-layer threats, such as high-power jamming attacks. To address this challenge, we first introduce a novel metric, namely Maximum Number of Affected Requests (maxNAR), to quantify the worst-case impact of a single physical-layer attack, and then we investigate a new problem of Routing and Wavelength Assignment with Minimal Attack Radius (RWA-MAR). We formulate the problem using an Integer Linear Programming (ILP) model and propose a scalable heuristic to efficiently minimize maxNAR. Our approach incorporates key caching through Quantum Key Pools (QKPs) to enhance resilience and optimize resource utilization. Moreover, we model the impact of different QKD network architectures, employing Optical Bypass (OB) for optical switching of quantum channels and Trusted Relay (TR) for secure key forwarding. Moreover, a tunable parameter is designed in the heuristic to guide the preference for OB or TR, offering enhanced adaptability and dynamic control in diverse network scenarios. Simulation results confirm that our method significantly outperforms the baseline in terms of security and scalability.
format Preprint
id arxiv_https___arxiv_org_abs_2508_10613
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Routing and Wavelength Assignment with Minimal Attack Radius for QKD Networks
Li, Mengyao
Zhang, Qiaolun
Yang, Zongshuai
Bregni, Stefano
Gatto, Alberto
Boutaba, Raouf
Tornatore, Massimo
Quantum Physics
Networking and Internet Architecture
Quantum Key Distribution (QKD) can distribute keys with guaranteed security but remains susceptible to key exchange interruption due to physical-layer threats, such as high-power jamming attacks. To address this challenge, we first introduce a novel metric, namely Maximum Number of Affected Requests (maxNAR), to quantify the worst-case impact of a single physical-layer attack, and then we investigate a new problem of Routing and Wavelength Assignment with Minimal Attack Radius (RWA-MAR). We formulate the problem using an Integer Linear Programming (ILP) model and propose a scalable heuristic to efficiently minimize maxNAR. Our approach incorporates key caching through Quantum Key Pools (QKPs) to enhance resilience and optimize resource utilization. Moreover, we model the impact of different QKD network architectures, employing Optical Bypass (OB) for optical switching of quantum channels and Trusted Relay (TR) for secure key forwarding. Moreover, a tunable parameter is designed in the heuristic to guide the preference for OB or TR, offering enhanced adaptability and dynamic control in diverse network scenarios. Simulation results confirm that our method significantly outperforms the baseline in terms of security and scalability.
title Routing and Wavelength Assignment with Minimal Attack Radius for QKD Networks
topic Quantum Physics
Networking and Internet Architecture
url https://arxiv.org/abs/2508.10613