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Comparing two data driven interpolation methods for modeling nitrate distribution in aquifer

机译:比较两种数据驱动的插值方法,用于模拟含水层中的硝酸盐分布

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摘要

As a soluble compound in water, nitrate could easily pass through soil to the groundwater. In recent decades, nitrate pollution of groundwater has been increased mainly as a result of excessive application of fertilizers in agricultural areas. Appraisal of nitrate distribution in aquifers is not a new problem but it is still unsolved. This paper compares the performances of two modeling approaches such as geostatistical (kriging) and soft (fuzzy) computing in spatial interpolation of nitrate concentration in groundwater. For this purpose, the groundwater samples are collected from springs and wells in Mersin-Tarsus Aquifer to be considered. The estimation models are established based on data driven modeling concept. The results and performance evaluations indicate that the estimation capacity of the fuzzy model is higher than that of the kriging model.
机译:硝酸盐作为一种可溶于水的化合物,很容易穿过土壤进入地下水。近几十年来,地下水的硝酸盐污染已经增加,这主要是由于在农业地区过量使用肥料的结果。评估含水层中硝酸盐的分布并不是一个新问题,但仍未解决。本文比较了两种建模方法在地下水硝酸盐浓度的空间插值中的性能,如地统计(克里金法)和软(模糊)法。为此,要从梅尔辛-塔尔苏斯含水层的泉水和水井中收集地下水样品。估计模型是基于数据驱动的建模概念而建立的。结果和性能评估表明,模糊模型的估计能力高于克里格模型的估计能力。

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