首页> 外文期刊>Journal of Agricultural, Biological, and Environmental Statistics >Clustering of temporal profiles using a Bayesian logistic mixture model: Analyzing groundwater level data to understand the characteristics of urban groundwater recharge
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Clustering of temporal profiles using a Bayesian logistic mixture model: Analyzing groundwater level data to understand the characteristics of urban groundwater recharge

机译:使用贝叶斯逻辑混合模型对时间剖面进行聚类:分析地下水位数据以了解城市地下水补给的特征

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摘要

The hydrogeologic conditions of groundwater can be examined by carefully studying the patterns of fluctuations in groundwater levels. These fluctuations are spatially and temporally influenced by many complicated factors, including rainfall, topography, land use, and hydraulic properties of soils and bedrock (i.e., aquifers). In this article we report a methodology based on the Bayesian logistic mixture model to simultaneously cluster profiles of groundwater level changes over time and estimate the relationships between the characteristics of each cluster and environmental variables. We apply the proposed method to analyze groundwater level profiles from 37 monitoring wells in Seoul, South Korea, and we find four clusters of wells. Using the estimated relationship between the clusters and the environmental variables, we discern the hydrogeologic conditions of each cluster, thus gaining insight into the recharge and subsurface flow of bedrock groundwater in an urban setting and the vulnerability of groundwater to the inflow of potential pollutants from ground surface. This article has supplementary material online.
机译:可以通过仔细研究地下水位波动的模式来研究地下水的水文地质条件。这些涨落在空间和时间上受到许多复杂因素的影响,包括降雨,地形,土地利用以及土壤和基岩(即含水层)的水力特性。在本文中,我们报告了一种基于贝叶斯逻辑混合模型的方法,可同时对地下水位随时间的变化进行聚类,并估算每个聚类的特征与环境变量之间的关系。我们应用拟议的方法分析了韩国首尔的37口监测井的地下水位剖面,发现了四口井。利用估计的类群与环境变量之间的关系,我们可以识别每个类群的水文地质条件,从而深入了解城市环境中的基岩地下水的补给和地下流动以及地下水对潜在污染物从地面流入的脆弱性表面。本文在线提供了补充材料。

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