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A Feature-Based Procedure for Detecting Technical Outliers in Water-Quality Data From In Situ Sensors

机译:一种基于特征的程序,用于从原位传感器中检测水质数据中的技术异常值

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摘要

Outliers due to technical errors in water-quality data from in situ sensors can reduce data quality and have a direct impact on inference drawn from subsequent data analysis. However, outlier detection through manual monitoring is infeasible given the volume and velocity of data the sensors produce. Here we introduce an automated procedure, named oddwater, that provides early detection of outliers in water-quality data from in situ sensors caused by technical issues. Our oddwater procedure is used to first identify the data features that differentiate outlying instances from typical behaviors. Then, statistical transformations are applied to make the outlying instances stand out in a transformed data space. Unsupervised outlier scoring techniques are applied to the transformed data space, and an approach based on extreme value theory is used to calculate a threshold for each potential outlier. Using two data sets obtained from in situ sensors in rivers flowing into the Great Barrier Reef lagoon, Australia, we show that oddwater successfully identifies outliers involving abrupt changes in turbidity, conductivity, and river level, including sudden spikes, sudden isolated drops, and level shifts, while maintaining very low false detection rates. We have implemented this oddwater procedure in the open source R package oddwater.
机译:来自原位传感器的水质数据中的技术错误导致的异常值会降低数据质量,并直接影响后续数据分析得出的结论。但是,鉴于传感器产生的数据量和速度,通过手动监控进行异常值检测是不可行的。在这里,我们介绍了一种名为oddwater的自动化程序,该程序可以从技术问题引起的现场传感器中早期检测出水质数据中的异常值。我们的奇特方法首先用于识别将外围实例与典型行为区分开的数据特征。然后,应用统计转换以使外围实例在转换后的数据空间中脱颖而出。将无监督离群值评分技术应用于转换后的数据空间,并使用基于极值理论的方法来计算每个潜在离群值的阈值。利用从流入澳大利亚大堡礁泻湖的河流中的原位传感器获得的两个数据集,我们发现奇水成功地识别了浊度,电导率和河流水位突然变化的异常值,包括突然的峰值,突然的孤立滴落和水位在保持非常低的错误检测率的同时进行了移位。我们已经在开源R包奇数水中实现了这种奇数水过程。

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  • 来源
    《Water resources research》 |2019年第1期|8547-8568|共22页
  • 作者单位

    ARC Ctr Excellence Math & Stat Frontiers ACEMS Melbourne Vic Australia|Monash Univ Dept Econmetr & Business Stat Clayton Vic Australia;

    ARC Ctr Excellence Math & Stat Frontiers ACEMS Melbourne Vic Australia|Queensland Univ Technol Inst Future Environm Sci & Engn Fac Brisbane Qld Australia|Queensland Univ Technol Sch Math Sci Sci & Engn Fac Brisbane Qld Australia;

    ARC Ctr Excellence Math & Stat Frontiers ACEMS Melbourne Vic Australia|Queensland Univ Technol Sch Math Sci Sci & Engn Fac Brisbane Qld Australia;

    ARC Ctr Excellence Math & Stat Frontiers ACEMS Melbourne Vic Australia|Univ Melbourne Sch Math & Stat Parkville Vic Australia;

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  • 正文语种 eng
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