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Experimental validation of the proposed extended Kalman filter with unknown inputs algorithm based on data fusion

机译:基于数据融合的未知输入算法的建议扩展卡尔曼滤波器的实验验证

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The extended Kalman filter is a useful tool in the research of structural health monitoring and vibration control. However, the traditional extended Kalman filter approach is only applicable when the information of external inputs to structures is available. In recent years, some improved extended Kalman filter methods applied with unknown inputs have been proposed. The authors have proposed an extended Kalman filter with unknown inputs based on data fusion of partially measured displacement and acceleration responses. Compared with previous approaches, the drifts in the estimated structural displacements and unknown external inputs can be avoided. The feasibility of proposed extended Kalman filter with unknown inputs has been demonstrated by some numerical simulation examples. However, experimental validation of the proposed extended Kalman filter with unknown inputs has not been conducted. In this paper, an experiment is conducted to validate the effectiveness of the proposed approach. A five-story shear building model subjected to an unknown external excitation of wide-band white noise is conducted. Moreover, the data fusion of partially measured strain and acceleration responses from the building is adopted as it is difficult to accurately measure structural displacement in practice. Identified results show that the recently proposed extended Kalman filter with unknown inputs can be applied to identify structural parameters, structural states, and the unknown inputs in real time.
机译:扩展卡尔曼滤波器是结构健康监测和振动控制研究的一种有用工具。但是,传统的扩展卡尔曼滤波器方法仅适用于对结构的外部输入的信息可用。近年来,已经提出了一些改进的扩展卡尔曼滤波器方法应用了未知输入。作者提出了一种基于部分测量的位移和加速响应的数据融合的未知输入的扩展卡尔曼滤波器。与先前的方法相比,可以避免估计的结构位移和未知的外部输入中的漂移。已经通过一些数值模拟实施例证明了具有未知输入的提出的扩展卡尔曼滤波器的可行性。但是,尚未进行提出的延长卡尔曼滤波器的实验验证,尚未进行未知输入。在本文中,进行了实验以验证所提出的方法的有效性。进行了一个五层剪力建筑模型,经过宽带白噪声未知外部激励。此外,采用了部分测量的应变和从建筑物的加速响应的数据融合,因为难以在实践中准确测量结构位移。鉴定的结果表明,最近提出的扩展卡尔曼滤波器具有未知输入可以应用于实时识别结构参数,结构状态和未知输入。

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