LEO-PNT星座的优化:设计考虑和开放挑战

IF 1.6 4区 计算机科学 Q3 ENGINEERING, AEROSPACE
Kaan Çelikbilek, Elena Simona Lohan, Jaan Praks
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引用次数: 0

摘要

随着卫星发射和制造成本的降低,近年来工业界和学术界对近地轨道卫星的兴趣日益浓厚。基于这种兴趣,基于低空定位、导航和授时(LEO-PNT)的概念也作为现有全球导航卫星系统(GNSS)的补充和/或独立系统而受到欢迎。本文从LEO- pnt设计的角度提出了一种LEO星座优化方法,识别并讨论了LEO卫星星座优化方法的现状,介绍了相关的性能和可行性指标和参数,并提出了任何LEO- pnt星座设计必须考虑的关键概念和权衡。此外,还介绍了一个LEO-PNT星座优化的案例研究,其中我们展示了所讨论的权衡。本文给出了将自适应加权算法“ADaW”应用于pareto优化算法非支配排序遗传算法III (NSGA-III)的优化结果。对具有不同接收器位置属性的六种相关场景进行了详细的性能分析,即考虑室内/室外、农村/城市以及瞄准线/非瞄准线(NLOS)情况。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimization of a LEO-PNT Constellation: Design Considerations and Open Challenges

As the satellite launch and manufacturing costs have become affordable, the industrial and academic interest in low-Earth orbit (LEO) satellites has increased in recent years. With this interest, the concept of LEO-based positioning, navigation, and timing (LEO-PNT) has also gained popularity as a complementary and/or standalone system in addition to the already existing Global Navigation Satellite Systems (GNSS). This article proposes a LEO constellation optimization methodology from the perspective of a LEO-PNT design, identifies and discusses the state-of-art of the LEO satellite constellation optimization approaches, introduces relevant performance- and feasibility-related metrics and parameters, and addresses key concepts and trade-offs that must be considered for any LEO-PNT constellation design. In addition, a case study for a LEO-PNT constellation optimization is presented, where we showcase the discussed trade-offs. We present optimization results obtained with the adaptive weighting algorithm “ADaW” applied to the Pareto-optimization algorithm nondominated sorting genetic algorithm III (“NSGA-III”). A detailed performance analysis is done for six relevant scenarios with varying receiver location properties, namely, by considering indoor/outdoor, rural/urban and line of sight/non–line of sight (NLOS) cases.

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来源期刊
CiteScore
4.10
自引率
5.90%
发文量
31
审稿时长
>12 weeks
期刊介绍: The journal covers all aspects of the theory, practice and operation of satellite systems and networks. Papers must address some aspect of satellite systems or their applications. Topics covered include: -Satellite communication and broadcast systems- Satellite navigation and positioning systems- Satellite networks and networking- Hybrid systems- Equipment-earth stations/terminals, payloads, launchers and components- Description of new systems, operations and trials- Planning and operations- Performance analysis- Interoperability- Propagation and interference- Enabling technologies-coding/modulation/signal processing, etc.- Mobile/Broadcast/Navigation/fixed services- Service provision, marketing, economics and business aspects- Standards and regulation- Network protocols
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