The Security Analysis of Continuous-Variable Quantum Key Distribution under Limited Eavesdropping with Practical Fiber
Sheng Liu, Lu Fan, Zhengyu Li, Qiang Zhou, Yunbo Li, Dong Wang, Dechao, Zhang, Yichen Zhang, and Han Li

TL;DR
This paper analyzes how fiber loss impacts eavesdropping strategies in continuous-variable quantum key distribution, showing that practical fiber loss limits eavesdropper capabilities and enhances system security.
Contribution
It introduces a teleportation-based attack model considering fiber loss, revealing how eavesdropping effectiveness varies with entanglement quality and station placement.
Findings
Fiber loss limits eavesdropper's ability, increasing secret key rate.
Optimal eavesdropping occurs when stations are merged near the transmitter under limited entanglement.
Practical fiber loss can increase secret key rate by 20-40% compared to ideal eavesdropping.
Abstract
Research on optimal eavesdropping models under practical conditions will help to evaluate realistic risk when employing quantum key distribution (QKD) system for secure information transmission. Intuitively, fiber loss will lead to the optical energy leaking to the environment, rather than harvested by the eavesdropper, which also limits the eavesdropping ability while improving the QKD system performance in practical use. However, defining the optimal eavesdropping model in the presence of lossy fiber is difficult because the channel is beyond the control of legitimate partners and the leaked signal is undetectable. Here we investigate how the fiber loss influences the eavesdropping ability based on a teleportation-based collective attack model which requires two distant stations and a shared entanglement source. We find that if the distributed entanglement is limited due to the…
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Taxonomy
TopicsQuantum Information and Cryptography · Quantum Computing Algorithms and Architecture · Optical Network Technologies
