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利用原位测量站对水系统进行高级监测:数据验证和故障检测。

Advanced monitoring of water systems using in situ measurement stations: data validation and fault detection.

机构信息

Université Laval, Département de génie civil et de génie des eaux, Québec, QC G1V 0A6, Canada E-mail:

出版信息

Water Sci Technol. 2013;68(5):1022-30. doi: 10.2166/wst.2013.302.

Abstract

In situ continuous monitoring at high frequency is used to collect water quality information about water bodies. However, it is crucial that the collected data be evaluated and validated for the appropriate interpretation of the data so as to ensure that the monitoring programme is effective. Software tools for data quality assessment with a practical orientation are proposed. As water quality data often contain redundant information, multivariate methods can be used to detect correlations, pertinent information among variables and to identify multiple sensor faults. While principal component analysis can be used to reduce the dimensionality of the original variable data set, monitoring of some statistical metrics and their violation of confidence limits can be used to detect faulty or abnormal data and can help the user apply corrective action(s). The developed algorithms are illustrated with automated monitoring systems installed in an urban river and at the inlet of a wastewater treatment plant.

摘要

原位高频连续监测用于收集水体水质信息。然而,为了正确解释数据,必须对收集到的数据进行评估和验证,以确保监测计划的有效性。提出了具有实用导向的数据质量评估软件工具。由于水质数据通常包含冗余信息,因此可以使用多元方法来检测变量之间的相关性、相关信息,并识别多个传感器故障。虽然主成分分析可用于降低原始变量数据集的维度,但可以使用监测一些统计指标及其对置信限的违反情况来检测有故障或异常的数据,并帮助用户采取纠正措施。所开发的算法通过安装在城市河流和污水处理厂入口处的自动化监测系统进行了说明。

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