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Combining Spatial Analysis and a Drinking Water Quality Index to Evaluate Monitoring Data

机译:相结合的空间分析和饮用水质量指数来评估监测数据

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摘要

Drinking water monitoring is essential for identifying health-related risks, as well as for building foundations for management of safe drinking water supplies. However, statistical analyses of drinking water quality monitoring data are challenging because of non-normal (skewed distributions) and missing values. Therefore, a new method combining a water quality index (WQI) with spatial analysis is introduced in this paper to fill the gap between data collection and data analysis. Water constituent concentrations in different seasons and from different water sources were compared based on WQIs. To generate a WQI map covering all of the study areas, predicted WQI values were created for locations in the study area based on spatial interpolation from nearby observed values. The accuracy value of predicted and measured values of our method was 0.99, indicating good predication performance. Overall, the results of this study indicate that this method will help fill the gap between the collection of large amounts of drinking water data and data analysis for drinking water monitoring and process control.
机译:饮用水监测对于识别与健康有关的风险至关重要,以及建设安全饮用水供应的基础。然而,由于非正常(偏斜分布)和缺失值,饮用水质量监测数据的统计分析是具有挑战性的。因此,本文介绍了一种新的方法,将水质指数(WQI)与空间分析介绍,以填补数据收集和数据分析之间的差距。基于WQIS比较了不同季节和不同水源的水分素浓度。为了生成涵盖所有研究区域的WQI地图,基于附近观察值的空间插值来创建预测的WQI值。我们方法的预测和测量值的精度值为0.99,表明良好的预测性能。总体而言,本研究结果表明,该方法将有助于填补大量饮用水数据的收集与饮用水监测和过程控制的数据分析之间的差距。

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