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Image-based structural dynamic displacement measurement using different multi-object tracking algorithms

机译:使用不同多目标跟踪算法的基于图像的结构动态位移测量

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摘要

With the help of advanced image acquisition and processing technology, the vision-based measurement methods have been broadly applied to implement the structural monitoring and condition identification of civil engineering structures. Many noncontact approaches enabled by different digital image processing algorithms are developed to overcome the problems in conventional structural dynamic displacement measurement. This paper presents three kinds of image processing algorithms for structural dynamic displacement measurement, i.e., the grayscale pattern matching (GPM) algorithm, the color pattern matching (CPM) algorithm, and the mean shift tracking (MST) algorithm. A vision-based system programmed with the three image processing algorithms is developed for multi-point structural dynamic displacement measurement. The dynamic displacement time histories of multiple vision points are simultaneously measured by the vision-based system and the magnetostrictive displacement sensor (MDS) during the laboratory shaking table tests of a three-story steel frame model. The comparative analysis results indicate that the developed vision-based system exhibits excellent performance in structural dynamic displacement measurement by use of the three different image processing algorithms. The field application experiments are also carried out on an arch bridge for the measurement of displacement influence lines during the loading tests to validate the effectiveness of the vision-based system.
机译:借助先进的图像采集和处理技术,基于视觉的测量方法已广泛应用于土木工程结构的结构监测和状态识别。为了克服传统结构动态位移测量中的问题,开发了许多由不同数字图像处理算法支持的非接触方法。本文介绍了用于结构动态位移测量的三种图像处理算法,即灰度模式匹配(GPM)算法,颜色模式匹配(CPM)算法和均值漂移跟踪(MST)算法。开发了一种基于视觉的系统,该系统使用三种图像处理算法编程,可用于多点结构动态位移测量。在三层钢框架模型的实验室振动台测试期间,基于视觉的系统和磁致伸缩位移传感器(MDS)同时测量了多个视点的动态位移时间历史。对比分析结果表明,开发的基于视觉的系统通过使用三种不同的图像处理算法在结构动态位移测量中表现出出色的性能。还在拱桥上进行了现场应用实验,以在载荷测试期间测量位移影响线,以验证基于视觉的系统的有效性。

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