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A farmland immersion evaluation method based on grey clustering

机译:基于灰色聚类的农田浸没评估方法

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As we all know, the degree of farmland immersion is affected by many factors such as soil moisture content, natural pore ratio, saturation, soil lithology and so on. However, the conventional submergence assessment method only uses the relative relationship between the depth of phreatic water and the rising height of capillary water to judge the degree of submergence, which is obviously unreasonable. Therefore, in this paper, a method of farmland immersion evaluation based on trigonometric whiteness weight function grey clustering is proposed. The physical properties of soil, surface soil lithology of vadose zone and groundwater level elevation are included in the evaluation index system, and the degree of submergence is classified, and then the weight function is constructed to determine the degree of submergence hazard of each observation point in the immersion area. Case study shows that the method is reasonable and feasible for farmland immersion evaluation.
机译:众所周知,农田浸泡程度受到土壤水分含量,天然孔隙率,饱和度,土壤岩性等多种因素的影响。然而,常规潜水评估方法仅使用潜水深度之间的相对关系和毛细管水的上升高度来判断淹没程度,这显然是不合理的。因此,在本文中,提出了一种基于三角白度重量函数灰聚类的农田浸没评估方法。散裂区和地下水位升高的土壤,表面土地岩性的物理性质包括在评价指标体系中,分类为淹没程度,然后构建重量函数以确定每个观察点的淹没程度在浸没区。案例研究表明,该方法对于农田浸没评估是合理和可行的。

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