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Structural health monitoring using video stream, influence lines, and statistical analysis

机译:使用视频流,影响线和统计分析进行结构健康监控

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摘要

Civil infrastructure systems experience damage, overloading, aging due to normal operations, severe environmental conditions, and extreme events. These effects change the structural behavior and performance. Novel structural health monitoring (SHM) strategies are increasingly becoming more important to objectively determine the actual condition and these changes. The main objective of this study is to demonstrate the integration of video images and sensor data as promising techniques for the safety of bridges in the context of SHM. The UCF 4-span bridge model is used to demonstrate the method. Image and sensing data are analyzed to obtain unit influence line (UIL) as an index for monitoring the bridge behavior under loading conditions identified using computer vision techniques. UILs are extracted for several different moving loads. In addition to the analysis of UlLs in a comparative fashion, a new method based on statistical outlier detection from UIL vector sets is proposed and demonstrated. The new method is applied to detect and identify some of the most common damage scenarios for bridges such as changes in boundary conditions and loss of connectivity between composite sections. Successful results are obtained from the experimental studies.
机译:由于正常运行,恶劣的环境条件和极端事件,民用基础设施系统会遭受损坏,过载,老化。这些影响会改变结构行为和性能。为了客观地确定实际状况和这些变化,新型结构健康监测(SHM)策略变得越来越重要。这项研究的主要目的是证明视频图像和传感器数据的集成是在SHM环境下实现桥梁安全的有前途的技术。 UCF 4跨度桥梁模型用于演示该方法。分析图像和传感数据以获得单位影响线(UIL),作为在使用计算机视觉技术确定的载荷条件下监控桥梁行为的指标。针对几种不同的移动载荷提取UIL。除了以比较方式分析UlL之外,还提出并展示了一种基于统计异常值检测的方法,该方法是从UIL向量集中进行统计异常值检测。该新方法用于检测和识别桥梁的一些最常见损坏情况,例如边界条件的变化以及复合截面之间的连通性损失。从实验研究中获得成功的结果。

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