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Graph Signal Processing on Complex Networks for Structural Health Monitoring

机译:结构健康监测复杂网络的曲线图信号处理

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In this work, we demonstrate the application of a framework targeting Complex Networks and Graph Signal Processing (GSP) for Structural Health Monitoring (SHM). By modeling and analyzing a large bridge equipped with strain and vibration sensors, we show that GSP is capable of selecting the most important sensors, investigating different optimization techniques for selection. Furthermore, GSP enables the detection of graph signal patterns (mode shapes), grasping the physical function of the sensors in the network. Our results indicate the efficacy of GSP on complex sensor data modeled in complex networks.
机译:在这项工作中,我们展示了框架靶向复杂网络和曲线图信号处理(GSP)的应用,用于结构健康监测(SHM)。 通过对配备应变和振动传感器的大型桥梁建模和分析,我们表明GSP能够选择最重要的传感器,研究不同的选择选择。 此外,GSP能够检测曲线图信号模式(模式形状),掌握网络中传感器的物理功能。 我们的结果表明GSP在复杂网络中建模的复杂传感器数据上的功效。

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