Quantum network applications in 6G paradigm

IF 5.9
Chitra Shukla, Junaid ur Rehman, Symeon Chatzinotas
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Abstract

Over the past four decades, quantum communication has evolved as a dynamic interdisciplinary field, advancing theoretical concepts and practical implementations. This article provides a concise overview focusing on recent progress in different aspects of secure quantum communication and quantum computation protocols, which can be applied to several real-world applications in quantum networks. These protocols guarantee unconditional security while enhancing communication rates and computation capabilities by harnessing quantum advantages. We also explore the role of non-terrestrial networks in quantum applications, with a focus on quantum technologies such as quantum key distribution and beyond, suitable for satellite-based applications. These technologies can contribute to future extensions of the quantum internet across intercontinental territories, connecting complex quantum network applications. Further, we delve into discussing the integration of quantum communication into 6G technology. The key innovation of this article lies in integrating quantum communication into 6G networks through a novel system-level simulation framework. 6G-enabled quantum networks are expected to meet the high demands on ubiquitous coverage, data rate, latency, and energy consumption. To address these issues, we design and evaluate four traffic demand scenarios using numerical simulation, illustrating how superdense coding doubles the data transmission rate and fulfills the high traffic demands on data rate, while under low traffic demand, entanglement resources can be reserved for future applications. Specifically, our investigation demonstrates how resource utilization adapts to different traffic demands, with adjustments based on available resources and practical constraints, evaluated over an ideal noise-free communication channel. The proof-of-work simulation is implemented using Python and is based on the system model we designed for varying traffic demands to pave the way for efficient quantum networks and gain deeper insights into their feasibility with available resources.

6G范式下的量子网络应用
在过去的四十年里,量子通信已经发展成为一个充满活力的跨学科领域,推动了理论概念和实践实现。本文简要概述了安全量子通信和量子计算协议的不同方面的最新进展,这些协议可以应用于量子网络中的几个实际应用。这些协议保证了无条件的安全性,同时通过利用量子优势提高了通信速率和计算能力。我们还探讨了非地面网络在量子应用中的作用,重点关注量子技术,如量子密钥分发等,适用于基于卫星的应用。这些技术可以促进量子互联网在洲际地区的未来扩展,连接复杂的量子网络应用。此外,我们还深入讨论了量子通信与6G技术的集成。本文的关键创新在于通过新颖的系统级仿真框架将量子通信集成到6G网络中。支持6g的量子网络有望满足对无处不在的覆盖、数据速率、延迟和能耗的高要求。为了解决这些问题,我们通过数值模拟设计和评估了四种流量需求场景,说明了超密集编码如何使数据传输速率翻倍并满足高流量对数据速率的需求,而在低流量需求下,纠缠资源可以为未来的应用保留。具体来说,我们的研究展示了资源利用如何适应不同的交通需求,并根据可用资源和实际限制进行调整,在理想的无噪声通信信道上进行评估。工作量证明仿真使用Python实现,并基于我们为不同流量需求设计的系统模型,为高效量子网络铺平道路,并通过可用资源更深入地了解其可行性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
8.20
自引率
0.00%
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