Multi-day evaluation of space domain awareness architectures via decision analysis and multi-objective optimization

A. Vasso, R. Cobb, J. Colombi, Bryan D. Little, David W. Meyer
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Abstract

The US Government is the world’s de facto provider of space object cataloging data, but it is challenged to maintain pace in an increasingly complex space environment. This work advances a multi-disciplinary approach to better understand and evaluate an underexplored solution recommended by national policy in which current collection capabilities are augmented with non-traditional sensors. System architecting techniques and extant literature identified likely needs, performance measures, and potential contributors to a conceptualized Augmented Network (AN). Multiple hypothetical architectures of ground- and space-based telescopes with representative capabilities were modeled and simulated on four separate days throughout the year, then evaluated against performance measures and constraints using Multi-Objective Optimization. Decision analysis and Pareto optimality identified a small, diverse set of high-performing architectures while preserving design flexibility. Should decision-makers adopt the AN approach, this research effort indicates (1) a threefold increase in average capacity, (2) a 55% improvement in coverage, and (3) a 2.5-h decrease in the average maximum time a space object goes unobserved.
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基于决策分析和多目标优化的空间域感知体系结构多日评估
美国政府实际上是世界上空间物体编目数据的提供者,但它面临着在日益复杂的空间环境中保持步伐的挑战。这项工作推进了一种多学科方法,以更好地理解和评估国家政策建议的一种未充分探索的解决方案,其中使用非传统传感器增强当前的收集能力。系统架构技术和现有文献确定了可能的需求、性能度量和概念化的增强网络(AN)的潜在贡献者。对具有代表性能力的地面和天基望远镜的多个假设架构在全年的四个不同日子进行建模和模拟,然后使用多目标优化对性能指标和约束进行评估。决策分析和帕累托最优性在保持设计灵活性的同时确定了一组小型的、多样化的高性能架构。如果决策者采用AN方法,这项研究表明:(1)平均容量增加三倍,(2)覆盖范围提高55%,(3)空间物体未被观测到的平均最长时间减少2.5小时。
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来源期刊
CiteScore
2.80
自引率
12.50%
发文量
40
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