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首页> 外文期刊>Journal of Hydrology >Meta-heuristic algorithms in optimizing GALDIT framework: A comparative study for coastal aquifer vulnerability assessment
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Meta-heuristic algorithms in optimizing GALDIT framework: A comparative study for coastal aquifer vulnerability assessment

机译:优化Galdit框架中的Meta-heuristic算法:沿海含水层漏洞评估的比较研究

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摘要

Creating a reliable groundwater vulnerability map is a key solution for protecting the groundwater resources and further planning in coastal aquifers. The GALDIT framework, which is an abbreviation for six parameters of Groundwater occurrence, Aquifer hydraulic conductivity, Level of groundwater above sea level, Distance from the shoreline, Impact of the existing status of seawater intrusion, and Thickness of the aquifer, is a well-known framework for evaluating the groundwater vulnerability in coastal zones. In this study, two meta-heuristic algorithms of Grey Wolf Optimizer (GWO) and Genetic Algorithm (GA) were proposed to optimize the weights of GALDIT framework. This framework was tested in the Gharesoo-Gorgan Rood coastal aquifer located in the north of Iran. The GALDIT index illustrated poor evaluation of vulnerability to seawater intrusion. Contrariwise, GALDIT-GWO and GALDIT-GA frameworks provided results that are more reasonable. Both vulnerability maps showed a close similarity in terms of vulnerability to seawater intrusion. The vulnerability maps demonstrated that the west and northwest parts of the study area suffer from seawater intrusion. Additionally, the values of Spearman's rank correlation coefficient between the indices of GALDIT, GALDIT-GWO and GALDIT-GA and the parameter of Cl/HCO3 were obtained as 0.31, 0.53, and 0.49 and the corresponding values for the parameter of TDS were obtained 0.45, 0.64 and 0.60, respectively. Therefore, it can be concluded that the proposed optimization models are able to provide accurate results. Furthermore, these models reduce the subjectivity and increase the capability of the GALDIT index.
机译:创建可靠的地下水漏洞地图是保护地下水资源和沿海含水层进一步规划的关键解决方案。镀金框架,这是六参数的地下水发生,含水层液压导电性,海平面上方地下水位,距离海岸线的距离,海水侵入现状的影响,以及含水层的厚度,是一个良好的用于评估沿海地区地下水脆弱性的已知框架。在这项研究中,提出了两种灰狼优化器(GWO)和遗传算法(GA)的2个荟萃启发式算法,以优化Galdit框架的重量。该框架在位于伊朗北部的Ghareoo-Gorgan Rood Aquifer中进行了测试。 Galdit指数说明了对海水入侵的脆弱性评估差。 Contrarive,Galdit-Gwo和Galdit-GA框架提供了更合理的结果。漏洞图在脆弱性侵扰的脆弱性方面表现出密切相似之处。该漏洞地图表明,研究区的西和西北部部分遭受海水入侵。另外,获得了镀锌,Galdit-GWO和GALDIT-GA指数与CL / HCO3参数之间的SPEARMAS等级相关系数的值,得到0.31,0.53和0.49,并获得了TDS参数的相应值0.45分别为0.64和0.60。因此,可以得出结论,所提出的优化模型能够提供准确的结果。此外,这些模型降低了主体性,并提高了盖特德指数的能力。

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