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SOM-DRASTIC: using self-organizing map for evaluating groundwater potential to pollution

机译:SOM-DRASTIC:使用自组织图评估地下水对污染的潜力

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摘要

Groundwater is considered as the most important water resource, especially in arid and semi-arid regions, so it is crucial to impede this source of water to be contaminated. One of the most common methods to assess groundwater vulnerability is DRASTIC method. However, the subjectivity existing in defining DRASTIC weights and ratings as well as inadaptability of the parameters involved in this method with special geology, hydrogeology, land use and climatic conditions have urged researchers to modify this method. In this paper, a new method combining a special type of the neural networks called Self-Organizing Map (SOM) and the traditional DRASTIC model resulting in the hybrid SOM-DRASTIC model is applied to modify and improve DRASTIC Model. The traditional DRASTIC method holds a summation among all negative effects of different factors contributing to vulnerability, while the proposed hybrid method is able of classifying the groundwater vulnerability and deriving the real relation existing between the DRASTIC parameters as the inputs and the vulnerability class as the output of the method. The vulnerability assessment process was performed on the Zayandeh-Rud river basin aquifers in Iran. The SOM-DRASTIC identified the northern parts of the study area as the most vulnerable areas with a drastically fractured structure, while the traditional DRASTIC ranked the western parts as the most vulnerable regions with a high rate of net recharge. The results demonstrate that the proposed method can be used by managers and decision-makers as an alternative robust tool for vulnerability-based classification and land use planning.
机译:地下水被认为是最重要的水资源,尤其是在干旱和半干旱地区,因此,阻止这种水源受到污染至关重要。评估地下水脆弱性的最常用方法之一是DRASTIC方法。但是,在定义DRASTIC权重和等级时存在的主观性以及该方法涉及的参数与特殊地质,水文地质,土地利用和气候条件的不适应性促使研究人员修改此方法。本文提出了一种将特殊类型的神经网络称为自组织映射(SOM)与传统DRASTIC模型相结合的新方法,从而产生了混合SOM-DRASTIC模型,从而对DRASTIC模型进行了修改和改进。传统的DRASTIC方法将导致脆弱性的各种因素的所有负面影响相加,而提出的混合方法能够对地下水脆弱性进行分类,并得出DRASTIC参数作为输入而脆弱性类作为输出之间的真实关系。该方法。脆弱性评估过程是在伊朗Zayandeh-Rud流域含水层上进行的。 SOM-DRASTIC将研究区域的北部确定为结构破裂最为脆弱的最脆弱区域,而传统DRASTIC将西部地区列为净充电率最高的最脆弱区域。结果表明,该方法可被管理者和决策者用作基于脆弱性的分类和土地利用规划的替代健壮工具。

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