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On Damage Identification in Civil Structures Using Tensor Analysis

机译:张量分析在土木结构损伤识别中的应用

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Structural health monitoring is a condition-based technology to monitor infrastructure using sensing systems. In structural health monitoring, the data are usually highly redundant and correlated. The measured variables are not only correlated with each other at a certain time but also are autocorrelated themselves over time. Matrix-based two-way analysis, which is usually used in structural health monitoring, can not capture all these relationships and correlations together. Tensor analysis allows us to analyse the vibration data in temporal, spatial and feature modes at the same time. In our approach, we use tensor analysis and one-class support vector machine for damage detection, localization and estimation in an unsupervised manner. The method shows promising results using data from lab-based structures and also data collected from the Sydney Harbour Bridge, one of iconic structures in Australia. We can obtain a damage detection accuracy of 0.98 and higher for all the data. Locations of damage were captured correctly and different levels of damage severity were well estimated.
机译:结构健康监控是一种基于状况的技术,可使用传感系统监控基础设施。在结构健康监控中,数据通常是高度冗余和相关的。所测量的变量不仅在特定时间相互关联,而且随着时间的推移自身也自相关。通常在结构健康监测中使用的基于矩阵的双向分析无法将所有这些关系和相关性结合在一起。张量分析使我们能够同时分析时间,空间和特征模式下的振动数据。在我们的方法中,我们使用张量分析和一类支持向量机以无监督的方式进行损伤检测,定位和估计。该方法使用来自实验室结构的数据以及从悉尼标志性建筑之一的悉尼海港大桥收集的数据显示出令人鼓舞的结果。对于所有数据,我们可以获得0.98或更高的损坏检测精度。可以正确地捕获损坏的位置,并且可以很好地估算出不同程度的损坏严重程度。

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