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Dynamical System Identification of Complex Nonlinear System Based on Phase Space Topological Features

机译:基于相空间拓扑特征的复杂非线性系统动力系统识别

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Dynamical system identification of complex nonlinear system can be regarded as parameter estimation task of uncovering the nature of the system, which is of much importance for many engineering applications. Sea clutter is one kind of complex nonlinear system, which has intrinsic complexity and high nonstationarity. Therefore, it is difficult to detect marine targets due to the low Signal-Noise-Ratio (SNR) and low Signal-Clutter-Ratio(SCR). To improve the performance of marine target detection in, a method to discover fundamental geometric structures from high-dimensional and multivariable data sets is proposed. The method can improve the target detection performance and its main novelty lies in phase space reconstruction and topological features extraction, based on the dynamical system identification scheme and topological data analysis (TDA) techniques. Experiments with measured sea-clutter data demonstrate the performance of the method proposed in this work.
机译:复杂非线性系统的动态系统识别可以被视为揭示系统性质的参数估计任务,这对于许多工程应用具有很多重要的重要性。海杂波是一种复杂的非线性系统,具有内在的复杂性和高度的非间抗性。因此,由于低信噪比(SNR)和低信号杂波比(SCR),难以检测海洋目标。为了提高海洋目标检测的性能,提出了一种从高维和多变量数据集发现基本几何结构的方法。该方法可以提高目标检测性能及其主要新颖性在于相位空间重建和拓扑特征提取,基于动态系统识别方案和拓扑数据分析(TDA)技术。测量海杂波数据的实验证明了该工作中提出的方法的性能。

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