PERBANDINGAN METODE MULTIPLE LINEAR REGRESSION (MLR) DAN REGRESSION KRIGING (RK) DALAM PEMETAAN KETEBALAN TANAH DIGITAL

Muhammad Fauzan Ramadhan, G. Samodra, Muhammad Rizky Nugraha, Djati Mardiatno
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Abstract

Soil thickness has a significant influence on many of earth surface processes, and it can be mapped using various methods. Digital soil mapping can be used to estimate the spatial distribution of soil thickness and can estimate the uncertainty of the soil prediction map. Digital soil mapping using regression methods such as Multiple Linear Regression (MLR) and Regression Krigging (RK) was used to estimate soil thickness of the slope of Bener Reservoir. Bener Dam is a national strategic project which is built for irrigation to improve farming quantity. The aim of this research was to determine the spatial variation of the soil thickness at the slope of Bener Reservoir. The accuracy of MLR and RK were compared to select the best soil thickness prediction. There were 212 and 53 soil thickness samples from fieldwork which were used for data training and testing, respectively. There were 5 environmental variables such as elevation, distance from river, slope, plan curvature, and topographic wetness index. R programming language with gstat, krige, and stats Packages was employed for MLR and RK prediction. The result showed that KR is more accurate than MLR.
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土壤厚度对许多地表过程有重要影响,可以用各种方法来绘制。数字土壤填图可用于估算土壤厚度的空间分布,并可估算土壤预测图的不确定性。采用多元线性回归(MLR)和回归k索克(RK)等回归方法进行数字土壤填图,估算了贝纳尔水库坡面土壤厚度。本纳大坝是为提高农业产量而建设的国家战略性灌溉工程。本研究的目的是确定贝纳水库坡面土壤厚度的空间变化规律。通过比较MLR和RK的精度,优选出最佳的土壤厚度预测方法。野外采集的土壤厚度样品分别为212份和53份,分别用于数据训练和测试。环境变量包括海拔、离河距离、坡度、平面曲率、地形湿度指数等5个变量。采用R编程语言gstat、krige和stats包进行MLR和RK预测。结果表明,KR比MLR更准确。
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