Anomaly detection model for seepage monitoring data of earth-rock dams based on coupled GAT and TCN
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(1.College of Hydraulic and Civil Engineering, Xinjiang Agricultural University, Urumqi 830052, China;2.Xinjiang Key Laboratory of Hydraulic Engineering Safety and Water Disasters Prevention, Urumqi 830052, China;3.College of Water Conservancy and Hydropower Engineering, Hohai University, Nanjing 210098, China)

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TV698.1

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    Abstract:

    Aiming at the problem that existing anomaly detection models for seepage monitoring data of earth-rock dams exhibit weak generalization capability and can only identify specific types of abnormal measurements, leading to low detection accuracy and high false-alarm rates, an anomaly detection model for earth-rock dam seepage monitoring data based on the graph attention network (GAT) mechanism and temporal convolutional network (TCN) is proposed. This model utilizes the GAT mechanism to assign weights to environmental factors, employs the TCN to improve the extraction of temporal features, and identifies abnormal data based on the model’s prediction error. Taking a clay-core rockfill dam in northwest China as a case study, six anomalous scenarios were constructed to validate the model. The results show that the proposed model can accurately identify abnormal seepage measurements of earth-rock dams, with average ROC-AUC and PR-AUC values of 0.948 and 0.968, respectively, meeting the requirements of practical engineering applications. Comparative analyses with state-of-the-art anomaly detection models further confirm that the proposed model exhibits superior anomaly detection performance and robustness.

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廖攀,李晓庆,顾昊,等.耦合GAT和TCN的土石坝渗流监测数据异常检测模型[J].水利水电科技进展,2025,45(6):85-90, 119.(LIAO Pan, LI Xiaoqing, GU Hao, et al. Anomaly detection model for seepage monitoring data of earth-rock dams based on coupled GAT and TCN[J]. Advances in Science and Technology of Water Resources,2025,45(6):85-90, 119.(in Chinese))

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  • Received:June 26,2024
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  • Online: December 11,2025
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