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传感器在动态约束可观测性方法误差传播中的作用。

Role of Sensors in Error Propagation with the Dynamic Constrained Observability Method.

作者信息

Peng Tian, Nogal Maria, Casas Joan R, Turmo Jose

机构信息

Department of Civil and Environmental Engineering, Universitat Politècnica de Catalunya, 08034 Barcelona, Spain.

Faculty of Civil Engineering and Geosciences, Delft University of Technology, 2628 CD Delft, The Netherlands.

出版信息

Sensors (Basel). 2021 Apr 21;21(9):2918. doi: 10.3390/s21092918.

Abstract

The inverse problem of structural system identification is prone to ill-conditioning issues; thus, uniqueness and stability cannot be guaranteed. This issue tends to amplify the error propagation of both the epistemic and aleatory uncertainties, where aleatory uncertainty is related to the accuracy and the quality of sensors. The analysis of uncertainty quantification (UQ) is necessary to assess the effect of uncertainties on the estimated parameters. A literature review is conducted in this paper to check the state of existing approaches for efficient UQ in the parameter identification field. It is identified that the proposed dynamic constrained observability method (COM) can make up for some of the shortcomings of existing methods. After that, the COM is used to analyze a real bridge. The result is compared with the existing method, demonstrating its applicability and correct performance by a reinforced concrete beam. In addition, during the bridge system identification by COM, it is found that the best measurement set in terms of the range will depend on whether the epistemic uncertainty involved or not. It is concluded that, because the epistemic uncertainty will be removed as the knowledge of the structure increases, the optimum sensor placement should be achieved considering not only the accuracy of sensors, but also the unknown structural part.

摘要

结构系统识别的反问题容易出现病态问题;因此,无法保证唯一性和稳定性。这个问题往往会放大认知不确定性和偶然不确定性的误差传播,其中偶然不确定性与传感器的精度和质量有关。不确定性量化(UQ)分析对于评估不确定性对估计参数的影响是必要的。本文进行了文献综述,以检查参数识别领域中有效UQ的现有方法的状况。结果表明,所提出的动态约束可观测性方法(COM)可以弥补现有方法的一些缺点。之后,使用COM对一座实际桥梁进行分析。将结果与现有方法进行比较,通过钢筋混凝土梁证明了其适用性和正确性能。此外,在通过COM进行桥梁系统识别的过程中,发现就范围而言的最佳测量集将取决于是否涉及认知不确定性。得出的结论是,由于随着对结构的了解增加,认知不确定性将被消除,因此最佳传感器布置不仅应考虑传感器的精度,还应考虑未知的结构部分。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/17e1/8122277/e7ca02eee48d/sensors-21-02918-g001.jpg

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