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Improved modal parameter estimation using expoonential windowing and non-parametric instrumental variables techniques

机译:使用指数窗和非参数工具变量技术的改进模态参数估计

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In the present contribution, the applicabililty of improved non-parametric identification techniques in the field of modal analysis are investigated. Exponential windowing is applied during the signal processing step, reducing leakage effects as well as noise on the data. Two new approaches are validated using Monte Carlo simulations for which the poles and residues are estimated by applying a least squares estimator (LSCE-LSFD). In additioin, an improved frequency response functions estimator, based on an instrumental variables approach, is integrated in the step prior to the parametric estimation. This allows for noise on both input and output measurements. The modal parameters togenther with their confidence intervals are derived by applying the frequency-domain Maximum Likeli-hood estimator. This is validated for an experimental case study.
机译:在目前的贡献中,研究了改进的非参数识别技术在模态分析领域中的应用。在信号处理步骤中应用了指数窗,从而减少了泄漏效应以及数据上的噪声。使用蒙特卡洛模拟验证了两种新方法,其中的极点和残差通过应用最小二乘估计器(LSCE-LSFD)进行估计。另外,在参数估计之前的步骤中,集成了基于工具变量方法的改进的频率响应函数估计器。这会在输入和输出测量中产生噪声。通过应用频域最大似然估计器,可以得出模态参数及其置信区间。这已通过实验案例验证。

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