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Physics-Informed Quantum Communication Networks: A Vision Toward the Quantum Internet

机译:基于物理的量子通信网络:量子互联网的愿景

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摘要

Quantum communications is a promising technology that will play a fundamental role in the design of future networks. In fact, significant efforts are being undertaken by both the quantum physics and the classical communications communities on developing new architectures, solutions, and practical implementations of quantum communication networks (QCNs). Although these efforts led to various advances in today's technologies, there still exists a non-trivial gap between the research efforts of the two communities on designing and optimizing the performance of QCNs. For instance, most prior works by the classical communications community ignore important quantum physics-based constraints when designing QCNs. For example, many existing works on entanglement distribution do not account for the decoherence of qubits inside quantum memories and, thus, their designs become impractical since they assume an infinite lifetime of quantum states. In this article, we bring forth a novel analysis of the performance of QCNs in a physics-informed manner, by relying on the quantum physics principles that underly the different components of QCNs. The need for the physics-informed approach is then assessed and its fundamental role in designing practical QCNs is analyzed across various open research areas. Moreover, we identify novel physics-informed performance metrics and controls that enable QCNs to leverage the state-of-theart advancements in quantum technologies to enhance their performance. Finally, we analyze multiple pressing challenges and open research directions in QCNs that must be treated using a physics-informed approach to lead practically viable results. Ultimately, this work attempts to bridge the gap between the classical communications and the quantum physics communities in the area of QCNs to foster the development of the future communication networks toward the quantum Internet.
机译:量子通信是一项很有前途的技术,它将在未来网络的设计中发挥重要作用。事实上,量子物理学和经典通信界都在努力开发量子通信网络 (QCN) 的新架构、解决方案和实际实现。尽管这些努力导致了当今技术的各种进步,但两个社区在设计和优化QCN性能方面的研究工作之间仍然存在不小的差距。例如,经典通信界的大多数先前工作在设计QCN时都忽略了重要的基于量子物理学的约束。例如,许多现有的纠缠分布工作没有考虑到量子存储器内量子比特的退相干,因此,它们的设计变得不切实际,因为它们假设量子态的无限寿命。在本文中,我们依靠QCN不同组件的量子物理原理,以物理学为依据的方式对QCN的性能进行了新颖的分析。然后评估了对物理知情方法的需求,并分析了其在设计实用QCN中的基本作用,并跨各个开放研究领域进行了分析。此外,我们确定了新的物理性能指标和控制措施,使QCN能够利用量子技术的最新进展来提高其性能。最后,我们分析了QCN中的多个紧迫挑战和开放的研究方向,这些挑战必须使用物理学方法进行处理,以得出实际可行的结果。最终,这项工作试图在QCN领域弥合经典通信和量子物理界之间的差距,以促进未来通信网络向量子互联网的发展。

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