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Sensor fault diagnosis for bridge monitoring system using similarity of symmetric responses

机译:基于对称响应相似度的桥梁监控系统传感器故障诊断

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摘要

To ensure high quality data being used for data mining or feature extraction in the bridge structural health monitoring (SHM) system, a practical sensor fault diagnosis methodology has been developed based on the similarity of symmetric structure responses. First, the similarity of symmetric response is discussed using field monitoring data from different sensor types. All the sensors are initially paired and sensor faults are then detected pair by pair to achieve the multi-fault diagnosis of sensor systems. To resolve the coupling response issue between structural damage and sensor fault, the similarity for the target zone (where the studied sensor pair is located) is assessed to determine whether the localized structural damage or sensor fault results in the dissimilarity of the studied sensor pair. If the suspected sensor pair is detected with at least one sensor being faulty, field test could be implemented to support the regression analysis based on the monitoring and field test data for sensor fault isolation and reconstruction. Finally, a case study is adopted to demonstrate the effectiveness of the proposed methodology. As a result, Dasarathy's information fusion model is adopted for multi-sensor information fusion. Euclidean distance is selected as the index to assess the similarity. In conclusion, the proposed method is practical for actual engineering which ensures the reliability of further analysis based on monitoring data.
机译:为了确保将高质量数据用于桥梁结构健康监测(SHM)系统中的数据挖掘或特征提取,已基于对称结构响应的相似性开发了实用的传感器故障诊断方法。首先,使用来自不同传感器类型的现场监测数据讨论对称响应的相似性。首先将所有传感器配对,然后逐对检测传感器故障,以实现传感器系统的多故障诊断。为了解决结构损伤和传感器故障之间的耦合响应问题,评估目标区域(所研究的传感器对所在的区域)的相似性,以确定局部结构损伤或传感器故障是否导致所研究的传感器对的不相似性。如果在至少一个传感器发生故障的情况下检测到可疑传感器对,则可以实施现场测试以支持基于监视和现场测试数据的回归分析,以进行传感器故障隔离和重建。最后,通过案例研究证明了所提出方法的有效性。结果,Dasarathy的信息融合模型被用于多传感器信息融合。选择欧几里得距离作为评估相似性的指标。综上所述,所提出的方法对于实际工程是可行的,可以确保基于监测数据的进一步分析的可靠性。

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