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A software-in-the-loop simulation of an intelligent microsatellite within a virtual environment

机译:虚拟环境中智能微卫星的软件在环仿真

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Rapid growth in space missions necessitates the onboard intelligence, which creates autonomous space systems by providing high level decision making, robust execution of decisions, and automatic fault repairing. Mostly, autonomous space systems are implemented as hybrid architectures with a few conceptual layers. Validating the stability and evaluating the performance of an autonomous architecture is critical for space missions. Software-in-the-loop simulation is a suitable approach for addressing this demand. However, the data acquired from simulation is represented as alphanumeric values or diagrams, which needs to be interpreted. In this paper, we propose an intelligent architecture to provide onboard autonomy for an observation micro-satellite. The architecture integrates the low level physical actions with conceptual decision making ability in a hierarchical manner. To evaluate the proposed architecture, we have implemented a distributed software-in-the-loop simulation to simulate the space, satellite, ground stations, and intelligent onboard software. Moreover, for the first time, we have used virtual reality to visualize the satellite's autonomous behavior in the orbit. It lets the users have a high level feedback from integrated simulation. Scenario-based evaluations have shown the stability and efficiency of the proposed architecture.
机译:太空任务的快速增长需要机载情报,该情报通过提供高级决策,强大的决策执行能力和自动故障修复功能来创建自主的太空系统。通常,自主空间系统被实现为具有几个概念层的混合体系结构。验证稳定性和评估自主架构的性能对于太空任务至关重要。环路软件仿真是解决此需求的合适方法。但是,从仿真中获取的数据表示为字母数字值或图表,需要对其进行解释。在本文中,我们提出了一种智能架构,可为观察微卫星提供机载自主性。该体系结构将低级的物理动作与概念决策能力进行了分层集成。为了评估所提出的体系结构,我们实现了分布式的在环仿真,以模拟空间,卫星,地面站和智能机载软件。而且,这是我们第一次使用虚拟现实技术来可视化卫星在轨道上的自主行为。它使用户可以从集成仿真中获得高水平的反馈。基于方案的评估显示了所提出体系结构的稳定性和效率。

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