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Dynamic Probabilistic Risk Assessment of Unmanned Aircraft Adaptive Flight Control Systems

机译:无人机自适应飞行控制系统的动态概率风险评估

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There is a great demand for risk assessment tools and techniques that can ensure safe and robust performance of an Unmanned Aircraft System (UAS) equipped with adaptive elements in missions involving multiple phases with uncertain system or operational conditions. A dynamic probabilistic risk assessment scheme involving multiple phase-specific implementations of a Backtracking Process Algorithm (BPA) based on a Markov Cell-to-Cell Mapping Technique is proposed for risk-informed identification of scenarios involving UAS control systems with adaptive control elements operating in the National Airspace. A UAS adaptive flight control system with the capability of handling variations in the flight dynamics and flight systems domain is used as a case study. Aircraft icing is taken as a varying component in the flight dynamics domain, while the engine state is taken as a varying component in the flight systems domain. The consequence of interest in the case study is taken to be a UAS failing to complete flare during landing. Multiple BPA instances are defined and implemented for cruise, initial descent, final descent, and flare phases in the proposed case study. The results of the implementations are integrated together to allow for efficient tracing of fault propagation throughout the system, and quantification of probabilistic system evolution in time.
机译:迫切需要风险评估工具和技术,以确保装备有自适应元件的无人机系统(UAS)在涉及不确定系统或操作条件的多个阶段的任务中安全可靠地运行。提出了一种动态概率风险评估方案,该方案涉及基于马尔可夫单元间映射技术的回溯过程算法(BPA)的多个特定阶段实现,可用于以风险信息识别涉及具有自适应控制元素的UAS控制系统的场景。国家领空。以UAS自适应飞行控制系统为例,该系统具有处理飞行动力学和飞行系统领域中的变化的能力。飞机结冰被视为飞行动力学领域中的可变组件,而发动机状态被视为飞行系统领域中的可变组件。案例研究中感兴趣的结果被认为是一架UAS在着陆过程中未完成火炬发射。在拟议的案例研究中,为巡航,初始下降,最终下降和爆发阶段定义和实施了多个BPA实例。实现的结果集成在一起,以允许有效跟踪整个系统中的故障传播,并及时量化概率系统的演化。

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