Avoiding Self-Interference in Megaconstellations Through Cooperative Satellite Routing and Frequency Assignment

Nils Pachler;Edward F. Crawley;Bruce G. Cameron
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Abstract

With the reduced distance between satellites in modern megaconstellations, the potential for self-interference has emerged as a critical challenge that demands strategic solutions from satellite operators. The goal of this paper is to propose a cooperative framework that combines the Satellite Routing (i.e., mapping of beams to satellites) and Frequency Assignment (i.e., mapping of frequency spectrum to beams) strategies to mitigate self-interference both within and between satellites. This approach stands in contrast to current practices found in the literature, which address each problem independently and solely focus on intra-satellite interference. This study presents a novel methodology for addressing the Satellite Routing problem, specifically tailored for modern constellations to maximize capacity while effectively mitigating self-interference through the use of Integer Optimization. By combining this method with established Frequency Assignment techniques, the results demonstrate an increase in throughput of up to 138% for constellations such as SpaceX Starlink. Notably, the study reveals that relying on individual approaches to tackle interference may lead to undesired outcomes, underscoring the advantages of a cooperative framework. Through simulations, the study highlights the practicality and applicability of the proposed method under realistic operational conditions.
通过合作卫星路由和频率分配避免巨型恒星中的自干扰
随着现代超大型卫星群中卫星之间距离的缩短,潜在的自干扰已成为一项严峻挑战,需要卫星运营商提供战略性解决方案。本文的目标是提出一个合作框架,将卫星路由(即波束与卫星的映射)和频率分配(即频谱与波束的映射)策略结合起来,以减轻卫星内部和卫星之间的自干扰。这种方法与目前文献中的做法形成鲜明对比,后者独立解决每个问题,只关注卫星内部干扰。本研究提出了一种解决卫星路由问题的新方法,专门为现代星座量身定制,通过使用整数优化技术最大限度地提高容量,同时有效缓解自干扰。通过将该方法与成熟的频率分配技术相结合,结果表明 SpaceX Starlink 等星座的吞吐量最多可提高 138%。值得注意的是,该研究揭示了依靠单独方法解决干扰问题可能会导致不理想的结果,从而突出了合作框架的优势。通过模拟,该研究强调了拟议方法在现实操作条件下的实用性和适用性。
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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