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Signal analysis and anomaly detection for flood early warning systems

机译:洪水预警系统的信号分析和异常检测

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摘要

We describe the detection methods and the results of anomalous conditions in dikes (earthen dams/levees) based on a simultaneous processing of several data streams originating from sensors installed in these dikes. Applied methods are especially valuable in cases where lack of information or computational resources prohibit computing the state of the dike with finite element and other mathematical models. The data-driven methods are part of the artificial intelligence (AI) component of the ‘Urbanflood’ early warning system. This AI component includes pre-processing (e.g., gap filling and measurements synchronization procedures) of data streams, feature extraction and anomaly detection by one-side (also known as one-class) classification methods. Our approach has been successfully validated during a non-destructive piping experiment at the Zeeland dike (The Netherlands).
机译:我们根据始发源自安装在这些堤坝中的传感器的几个数据流的同时处理堤防(土坝/堤坝)中的检测方法和异常情况结果。应用方法在缺乏信息或计算资源禁止使用有限元和其他数学模型的情况下禁止计算堤防状态和其他数学模型的情况尤其有价值。数据驱动方法是“UrbanFlood”预警系统的人工智能(AI)组件的一部分。该AI组分包括数据流的预处理(例如,间隙填充和测量同步程序),通过一侧(也称为单级)分类方法的特征提取和异常检测。我们的方法在Zeeland堤防(荷兰)的非破坏性管道实验期间已成功验证。

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