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Set-membership fault detection under noisy environment with application to the detection of abnormal aircraft control surface positions

机译:嘈杂环境下的集合成员故障检测及其在飞机控制面异常位置检测中的应用

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摘要

The paper develops a set membership detection methodology which is applied to the detection of abnormal positions of aircraft control surfaces. Robust and early detection of such abnormal positions is an important issue for early system reconfiguration and overall optimisation of aircraft design. In order to improve fault sensitivity while ensuring a high level of robustness, the method combines a data-driven characterisation of noise and a model-driven approach based on interval prediction. The efficiency of the proposed methodology is illustrated through simulation results obtained based on data recorded in several flight scenarios of a highly representative aircraft benchmark.
机译:本文提出了一种集合隶属度检测方法,该方法适用于飞机控制面异常位置的检测。此类异常位置的鲁棒和早期检测是早期系统重新配置和飞机设计总体优化的重要问题。为了在确保高水平的鲁棒性的同时提高故障敏感性,该方法结合了噪声的数据驱动表征和基于间隔预测的模型驱动方法。通过基于在具有高度代表性的飞机基准测试的几种飞行场景中记录的数据获得的仿真结果,说明了所提出方法的效率。

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