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Natural Frequency Extraction Using Late-Time Evolutionary Programming-Based CLEAN

机译:使用基于后期进化编程的CLEAN进行固有频率提取

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摘要

In this paper, we present a novel method for natural frequency extraction. Our algorithm is called late-time evolutionary programming (EP)-based CLEAN, and has many advantages compared to conventional methods. The accuracy of our algorithm is not affected by the false estimation of the number of natural resonance modes. Furthermore, our method is insensitive to random noise. Insensitivity is a very important characteristic in the resonance extraction algorithm since the late-time response usually has small energy. Using synthetic data, we show these characteristics by comparing them to Prony's method and the E-pulse technique. We also applied our method to the numerical data and B-52 measured data which is obtained at Michigan State University (MSU) arch range.
机译:在本文中,我们提出了一种新的自然频率提取方法。我们的算法称为基于后期进化编程(EP)的CLEAN,与传统方法相比,具有许多优势。我们算法的准确性不受自然共振模数错误估计的影响。此外,我们的方法对随机噪声不敏感。不敏感度是共振提取算法中非常重要的特征,因为后期响应通常具有较小的能量。使用合成数据,我们通过将它们与Prony的方法和E-pulse技术进行比较来显示这些特性。我们还将我们的方法应用于从密歇根州立大学(MSU)拱形范围获得的数值数据和B-52测量数据。

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