M. Bordbar, M. Nikoo, Ahmad Sana, Banafsheh Nematollahi, G. Al-Rawas, A. Gandomi
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引用次数: 1
Abstract
ABSTRACT This study introduced an innovative hybrid framework using statistical-based, multi-attribute decision-making (MADM), and multi-objective optimization methods to assess the vulnerability of the Oman's Al-Khoud coastal aquifer without temporal variations.. Firstly, an extra parameter, bedrock topography (BT), was added to a commonly used index model, GALDIT and the parameter of aquifer type was removed from the model. Also, the random forest (RF) method was used to define the relative importance of parameters. Then, both frequency ratio (FR) and stepwise weight assessment ratio analysis (SWARA) methods were applied to modify the GALDIT rates. The GALDIT weights were optimized using the non-dominated sorting genetic algorithm-II (NSGA-II). Finally, the coastal aquifer vulnerability index (CAVI) model was obtained based on the hybrid FR-SWARA and NSGA-II models. The CAVI vulnerability map indicated high vulnerability in the Northern aquifer areas. Furthermore, the Spearman correlation coefficient between the CAVI and total dissolved solids (TDS) obtained 0.78.
本研究引入了一个创新的混合框架,利用基于统计的多属性决策(MADM)和多目标优化方法来评估阿曼Al-Khoud沿海含水层的脆弱性,而不考虑时间变化。首先,在常用的指数模型GALDIT中增加基岩地形(BT)参数,去掉含水层类型参数;同时,采用随机森林(RF)方法定义参数的相对重要性。然后,采用频率比(FR)和逐步权重评估比分析(SWARA)方法对GALDIT率进行修正。采用非支配排序遗传算法- ii (NSGA-II)对GALDIT权重进行优化。最后,基于FR-SWARA和NSGA-II混合模型建立了沿海含水层脆弱性指数(CAVI)模型。CAVI脆弱性图显示北部含水层的脆弱性较高。CAVI与总溶解固形物(TDS)的Spearman相关系数为0.78。
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