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基于WT-kNN的沥青混凝土心墙坝渗流监测数据异常检测

毛建刚 阿尔娜古丽·艾买提 颜志光 廖攀

西北水电Issue(3):54-60,7.
西北水电Issue(3):54-60,7.DOI:10.3969/j.issn.1006-2610.2024.03.009

基于WT-kNN的沥青混凝土心墙坝渗流监测数据异常检测

Anomaly Detection of Seepage Monitoring Data of Asphalt Concrete Core Wall Dam based on WT-kNN

毛建刚 1阿尔娜古丽·艾买提 1颜志光 2廖攀3

作者信息

  • 1. 新疆水利水电科学研究院,乌鲁木齐 830049
  • 2. 博河流域管理处,新疆 博乐 833400
  • 3. 新疆农业大学 水利与土木工程学院,乌鲁木齐 830052
  • 折叠

摘要

Abstract

The quality of safety monitoring data is of significant importance for the analysis of the safety status of asphalt concrete core wall dam.Trend problems caused by time effects are the difficulties in detecting anomalies in seepage monitoring data.Modal decomposition methods can ef-fectively separate the trend component of time series and then identify abnormal signals.However,in the seepage monitoring data of earth-rock dams,modal aliasing of anomalies and real signals often exists.To solve these problems,the Wavelet Transform combined with local kNN weigh-ted regression(WT-kNN)anomaly detection method is introduced.In the proposed method,continuous wavelet transform is used to separate trend items,after which the detection results of wavelet transform are further scrutinized by the salocal kNN weighted regression,improving the accuracy of the model's anomaly detection.The results of engineering instance applications show that the recall rate of WT-kNN for monitoring se-quences with a gross error ratio of 2.5%~10%is more than 95%,and the misjudgment rate is less than 5%.The model and the WT-MAD method and the SSA-DBSCAN method comparative experiments have verified the effectiveness and superiority of WT-kNN.Sensitivity analysis re-sults show that the proposed model has low sensitivity to the proportion of the number of anomalies to the total data and the size of the anomaly fluctuation range,which can establish a basis for subsequent monitoring data analysis,processing,and early warning.

关键词

小波变换/局部K近邻算法/大坝安全监测/异常检测

Key words

wavelet transform/local K-nearest neighbor algorithm/dam safety monitoring/anomaly detection

分类

建筑与水利

引用本文复制引用

毛建刚,阿尔娜古丽·艾买提,颜志光,廖攀..基于WT-kNN的沥青混凝土心墙坝渗流监测数据异常检测[J].西北水电,2024,(3):54-60,7.

基金项目

2023年新疆维吾尔自治区公益性科研院所基本科研业务经费资助项目(KY2023106). (KY2023106)

西北水电

1006-2610

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