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Detection of the ice assertion on aircraft using empirical mode decomposition enhanced by multi-objective optimization

机译:利用多目标优化增强的经验模式分解来检测飞机的积冰

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摘要

In search of a precise method for analyzing nonlinear and non-stationary flight data of an aircraft in the icing condition, an Empirical Mode Decomposition (EMD) algorithm enhanced by multi-objective optimization is introduced. In the proposed method, dissimilar IMF definitions are considered by the Genetic Algorithm (GA) in order to find the best decision parameters of the signal trend. To resolve disadvantages of the classical algorithm caused by the envelope concept, the signal trend is estimated directly in the proposed method. Furthermore, in order to simplify the performance and understanding of the EMD algorithm, the proposed method obviates the need for a repeated sifting process. The proposed enhanced EMD algorithm is verified by some benchmark signals. Afterwards, the enhanced algorithm is applied to simulated flight data in the icing condition in order to detect the ice assertion on the aircraft The results demonstrate the effectiveness of the proposed EMD algorithm in aircraft ice detection by providing a figure of merit for the icing severity.
机译:为了寻找一种在结冰条件下分析飞机非线性和非平稳飞行数据的精确方法,引入了一种通过多目标优化增强的经验模式分解(EMD)算法。在提出的方法中,遗传算法(GA)考虑了不相似的IMF定义,以便找到信号趋势的最佳决策参数。为了解决由包络概念引起的经典算法的缺点,该方法直接估计了信号趋势。此外,为了简化性能和对EMD算法的理解,所提出的方法消除了对重复筛选过程的需要。通过一些基准信号验证了所提出的增强型EMD算法。然后,将增强算法应用于在结冰条件下的模拟飞行数据,以便检测飞机上的结冰情况。结果通过提供结冰严重程度的优值,证明了拟议的EMD算法在飞机结冰检测中的有效性。

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