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Fault detection and identification for quadrotor based on airframe vibration signals: A data-driven method

机译:基于机体振动信号的四旋翼飞机故障检测与识别:一种数据驱动方法

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This paper proposes a new method to detect and identify rotor's fault of quadrotor by using airframe vibration signals. A three-level wavelet packet decomposition method is used to analyze vibration signals. Then, the standard deviations of wavelet packet coefficients construct feature vectors that are used as input signals to design a fault diagnostor based on Artificial Neural Network (ANN). Output signals of the fault diagnostor reflect rotor health status. Finally, the effectiveness and performance of the proposed method are validated by airframe vibration data collected from a hovering experiment of a quadrotor.
机译:提出了一种利用机体振动信号检测和识别四旋翼转子故障的新方法。采用三级小波包分解方法对振动信号进行分析。然后,小波包系数的标准差构成特征向量,将其用作输入信号,以基于人工神经网络(ANN)设计故障诊断器。故障诊断器的输出信号反映了转子的健康状态。最后,通过从四旋翼飞机的悬停实验中收集的机身振动数据验证了该方法的有效性和性能。

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