Resource Placement for Rate and Fidelity Maximization in Quantum Networks

Shahrooz Pouryousef;Hassan Shapourian;Alireza Shabani;Ramana Kompella;Don Towsley
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Abstract

Existing classical optical network infrastructure cannot be immediately used for quantum network applications due to photon loss. The first step toward enabling quantum networks is the integration of quantum repeaters into optical networks. However, the expenses and intrinsic noise inherent in quantum hardware underscore the need for an efficient deployment strategy that optimizes the placement of quantum repeaters and memories. In this article, we present a comprehensive framework for network planning, aiming to efficiently distribute quantum repeaters across existing infrastructure, with the objective of maximizing quantum network utility within an entanglement distribution network. We apply our framework to several cases including a preliminary illustration of a dumbbell network topology and real-world cases of the SURFnet and ESnet. We explore the effect of quantum memory multiplexing within quantum repeaters, as well as the influence of memory coherence time on quantum network utility. We further examine the effects of different fairness assumptions on network planning, uncovering their impacts on real-time network performance.
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量子网络中实现速率和保真度最大化的资源分配
由于光子损耗,现有的经典光网络基础设施无法立即用于量子网络应用。实现量子网络的第一步是将量子中继器集成到光网络中。然而,量子硬件固有的费用和内在噪声突出表明,需要一种能优化量子中继器和存储器位置的高效部署策略。在本文中,我们提出了一个全面的网络规划框架,旨在将量子中继器有效地分布在现有的基础设施中,从而在纠缠分发网络中实现量子网络效用的最大化。我们将框架应用于多个案例,包括哑铃型网络拓扑的初步说明以及 SURFnet 和 ESnet 的实际案例。我们探索了量子中继器内量子存储器复用的效果,以及存储器相干时间对量子网络效用的影响。我们进一步研究了不同公平性假设对网络规划的影响,揭示了它们对实时网络性能的影响。
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