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首页> 外文期刊>Mineralogical Magazine >A logistic regression method for mapping the As hazard risk in shallow, reducing groundwaters in Cambodia
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A logistic regression method for mapping the As hazard risk in shallow, reducing groundwaters in Cambodia

机译:用逻辑回归方法绘制柬埔寨浅层,减少地下水中砷危害风险的图

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We combined statistical analyses and GIS capabilities within the statistical environment R to create a semi-automated method for the assessment of As hazard risk in shallow groundwater in Cambodia. Arsenic concentration data for groundwaters of between 16 and 100 m depth were obtained from 1437 geo-referenced wells. We created a binary logistic regression model with these As measurements as the dependent variable and a number of raster maps (DEM-parameters, remote sensing images and geomorphology) as explanatory variables, and considering an As threshold of 10 ppb. This allowed us to make an As hazard map for groundwaters between 16-100 m depth: this can be used to help to identify populations vulnerable to exposure. The logistic regression analysis indicates a good correlation between topographic and geomorphologic environmental variables and the As hazard risk in groundwater. Ease of implementation, and the ability to update, along with objectivity and reproducibility are the main advantages related to this method of analysis.
机译:我们在统计环境R中结合了统计分析和GIS功能,以创建一种半自动化的方法来评估柬埔寨浅层地下水的As危害风险。从1437个地理参考井获得了16至100 m深度的地下水中的砷浓度数据。我们创建了一个以这些As量作为因变量,并以许多光栅图(DEM参数,遥感图像和地貌)作为解释变量的二进制logistic回归模型,并考虑了As阈值为10 ppb。这使我们能够为16-100 m深度的地下水绘制As危害图:可用于帮助识别易受污染的人口。 Logistic回归分析表明,地形和地貌环境变量与地下水中As危害风险之间具有良好的相关性。与这种分析方法相关的主要优点是易于实施,具有更新能力以及客观性和可重复性。

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