流量感知最小成本量子通信网络规划

Ilora Maity;Junaid ur Rehman;Symeon Chatzinotas
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引用次数: 0

摘要

量子密钥分发(QKD)为量子通信基础设施(QCI)中的双方交换加密信息提供了一种安全的方法。部署QCI的主要挑战是使用光纤和可信中继器节点(trn)的成本。实际系统在同一光纤上结合量子信道和经典信道,以降低专用于量子密钥分配的光纤的成本。在这种量子-经典共存的系统中,由于请求的密钥速率需求不同、经典信道和量子信道的数量不同、经典信道和量子信道之间的保护带间距不同以及量子信道的密钥速率随距离减小,因此在复用链路上以最小的部署成本和功耗实现QKD请求的最佳分配是一项挑战。为了解决这些挑战,在这项工作中,我们提出了一种基于斯坦纳树的方法来构建一个QCI,该QCI以最小trn连接所有量子节点。此外,我们提出了一种基于遗传算法的解决方案,以最优地在QCI上分发端到端QKD请求。我们还确定了可行的光旁路路由,以进一步降低网络的总体能耗。与基准MST-Baseline相比,所提出的方法将QCI部署成本降低了19.42%。此外,平均而言,与非bypass方法相比,具有光bypass的TAQNet实现了4.69 kbit /焦耳的能量效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
TAQNet: Traffic-Aware Minimum-Cost Quantum Communication Network Planning
Quantum key distribution (QKD) provides a secure method to exchange encrypted information between two parties in a quantum communication infrastructure (QCI). The primary challenge in deploying a QCI is the cost of using optical fibers and trusted repeater nodes (TRNs). Practical systems combine quantum and classical channels on the same fiber to reduce the cost of fibers dedicated to QKD. In such a system with quantum-classical coexistence, the optimal distribution of QKD requests with minimal deployment cost and power usage on the multiplexed links is challenging due to the diverse key rate demands of the requests, number of classical and quantum channels, guard band spacing between classical and quantum channels, and secret key rate of the quantum channels that decreases with distance. To address these challenges, in this work, we propose a Steiner tree-based approach for constructing a QCI that connects all quantum nodes with minimum TRNs. In addition, we propose a genetic algorithm-based solution to optimally distribute the end-to-end QKD requests over the QCI. We also determine feasible optical bypass routes to reduce the overall energy consumption in the network further. The proposed approach reduces the QCI deployment cost by 19.42% compared to the benchmark MST-Baseline. Also, on average, TAQNet with optical bypass achieves 4.69 kbit per Joule more energy efficiency compared to the nonbypass approach.
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