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Optimization of Reconfigurable Satellite Constellations Using Simulated Annealing and Genetic Algorithm

机译:基于模拟退火和遗传算法的可重构卫星星座优化

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摘要

Agile Earth observation can be achieved with responsiveness in satellite launches, sensor pointing, or orbit reconfiguration. This study presents a framework for designing reconfigurable satellite constellations capable of both regular Earth observation and disaster monitoring. These observation modes are termed global observation mode and regional observation mode, constituting a reconfigurable satellite constellation (ReCon). Systems engineering approaches are employed to formulate this multidisciplinary problem of co-optimizing satellite design and orbits. Two heuristic methods, simulated annealing (SA) and genetic algorithm (GA), are widely used for discrete combinatorial problems and therefore used in this study to benchmark against a gradient-based method. Point-based SA performed similar or slightly better than the gradient-based method, whereas population-based GA outperformed the other two. The resultant ReCon satellite design is physically feasible and offers performance-to-cost(mass) superior to static constellations. Ongoing research on observation scheduling and constellation management will extend the ReCon applications to radar imaging and radio occultation beyond visible wavelengths and nearby spectrums.
机译:敏捷的地球观测可以通过卫星发射,传感器指向或轨道重新配置中的响应来实现。这项研究提出了一个框架,用于设计可进行常规地球观测和灾害监测的可重构卫星星座。这些观测模式被称为全局观测模式和区域观测模式,它们构成了可重构卫星星座(ReCon)。系统工程方法被用来制定共同优化卫星设计和轨道的多学科问题。两种启发式方法,即模拟退火(SA)和遗传算法(GA),被广泛用于离散组合问题,因此在本研究中用于基于梯度的方法作为基准。基于点的SA的性能与基于梯度的方法相似或略胜一筹,而基于群体的GA则优于其他两个方法。最终的ReCon卫星设计在物理上是可行的,并提供了优于静态星座图的性价比。正在进行的有关观测调度和星座管理的研究将把ReCon应用扩展到可见光波长和附近光谱之外的雷达成像和无线电掩星。

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