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Implementation of a Quantum Authentication Protocol Using Single Photons in Deployed Fiber

delete2026-03-01
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PRE
AI
J
Jeong, Youn-Chang *
J
Ji, Se-Wan
DOI:10.3390/e28040366delete
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Abstract

Abstract

En 中文
With the increasing importance of securing quantum communication networks, practical and robust entity authentication is a critical requirement. Accordingly, we propose and experimentally validate a quantum entity authentication (QEA) protocol specifically designed for integration with BB84-type quantum key distribution (QKD) workflows and existing terminal architectures. We analyze the protocol's security against intercept-resend man-in-the-middle (MitM) impersonation, showing that an unauthenticated adversary induces a characteristic 25% correlation error and that the rejection probability approaches unity as the number of detected authentication events increases. For practical realization, the protocol is deployed using weak coherent pulses (WCPs) with decoy-state estimation to bound single-photon contributions and mitigate photon-number-splitting (PNS)-enabled leakage. The system is demonstrated over a field-deployed fiber link of approximately 20 km with similar to 8 dB optical loss using signal/decoy intensities of similar to 0.5/similar to 0.15 and sending probabilities 0.88/0.10/0.02 (signal/decoy/vacuum). Across both verification directions, stable operation is observed with quantum bit error rate (QBER) typically fluctuating between 1% and 4% while the sifted key rate remains constant over time. These results provide an experimental basis for integrating physical-layer entity authentication into deployed quantum communication networks.
Keywords:
quantum communication
quantum network
quantum authentication

Journal

Entropy cover
Entropy
IF:
2
Papers:
919
Citations:
2.4W

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