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An identification approach for linear and nonlinear time-variant structural systems via harmonic wavelets

机译:基于谐波小波的线性和非线性时变结构系统识别方法

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摘要

A novel identification approach for linear and nonlinear time-variant systems subject to non-stationary excitations based on the localization properties of the harmonic wavelet transform is developed. Specifically, a single-input/single-output (SISO) structural system model is transformed into an equivalent multiple-input/single-output (MISO) system in the wavelet domain. Next, time and frequency dependent generalized harmonic wavelet based frequency response functions (GHW-FRFs) are appropriately defined. Finally, measured (non-stationary) input-output (excitation-response) data are utilized to identify the unknown GHW-FRFs and related system parameters. The developed approach can be viewed as a generalization of the well established reverse MISO spectral identification approach to account for non-stationary inputs and time-varying system parameters. Several linear and nonlinear time-variant systems are used to demonstrate the reliability of the approach. The approach is found to perform satisfactorily even in the case of noise-corrupted data.
机译:提出了一种基于谐波小波变换定位特性的线性和非线性时变系统非平稳激励辨识方法。具体而言,将单输入/单输出(SISO)结构系统模型转换为小波域中的等效多输入/单输出(MISO)系统。接下来,适当地定义基于时间和频率的基于广义谐波小波的频率响应函数(GHW-FRF)。最后,利用测得的(非平稳的)输入输出(激发响应)数据来识别未知的GHW-FRF和相关的系统参数。可以将开发的方法看作是建立完善的反向MISO光谱识别方法的一般化方法,以解决非平稳输入和时变系统参数的问题。几个线性和非线性时变系统用于证明该方法的可靠性。发现即使在噪声损坏的数据的情况下,该方法也能令人满意地执行。

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