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Quantum-enhanced physical-layer threat detection in metropolitan-scale fiber networks
arXiv
Authors: Yung-Cheng Kao, Siddharth Pal, Alex Forencich, Dylan Cirimelli-Low, Chaohan Cui, Jack Postlewaite, Pao-Kang Chen, Nicola Alic, Saikat Guha, Prithwish Basu, Linran Fan
Year
2026
Paper ID
72928
Status
Preprint
Abstract Read
~2 min
Abstract Words
155
Citations
N/A
Abstract
Network security is widely recognized as a key application of quantum technology. However, its large-scale deployment is hindered by the need for tight coordination between fundamentally different quantum and classical processing steps in conventional protocols. This requirement introduces strong cross-layer interdependencies that conflict with the modular, layered architectures enabling scalability in modern communication networks. Here, we present an alternative strategy that confines all quantum interventions to the physical layer and remains transparently compatible with existing network abstractions. This is achieved by directly embedding quantum features and classical information within the same optical field using bright squeezed light. Physical-layer signals are analyzed using a cumulative sum (CUSUM) method to enable quantum-enhanced threat detection. We validate the practicality of this approach through field deployment over a metropolitan-scale fiber network and further demonstrate network-level security functionalities enabled by physical-layer quantum-enhanced thread detection. These results establish a practical, scalable framework for seamlessly integrating quantum-enhanced security into large-scale communication infrastructure.
Why This Paper Matters
- This paper contributes to the Quantum Networks research area in the Quantum Articles archive.
- It adds a 2026 reference point for readers tracking recent quantum research.
- Network security is widely recognized as a key application of quantum technology.
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