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Geostatistical prediction of clay percentage based on soil survey data

机译:基于土壤调查数据的黏土百分比地统计预测

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In precision farming fields may be divided into management zones according to the spatial variation in soil properties. Clay content is an important soil characteristic, because it is associated with other soil properties that are important in management. Soil survey data from 150 sampling sites taken from an area of 218 ha were used to predict the spatial variation of clay percentage geostatistically in an agricultural soil in Jokioinen, Finland. The exponential and spherical models with a nugget component were fitted to the experimental variogram. This indicated that the medium-range pattern could be modelled, but the short-range variation could not, due to sparsity of sample points at short distances. The effect of sampling density on the kriging error was evaluated using the random simulation method. Kriging with a spherical model produced a map with smooth variation in clay percentage. The standard error of kriging estimates decreased only slightly when the density of samples was increased. The predictions were divided into three classes based on the clay percentage. Areas with clay content below 30%, between 30% and 60% and over 60% belong to non-clay, clay and heavy clay zones, respectively. With additional information from the soil samples on the contents of nutrients and organic matter these areas can serve as agricultural management zones.;
机译:在精密农业中,可根据土壤性质的空间变化将耕地分为管理区。粘土含量是重要的土壤特性,因为它与管理中重要的其他土壤特性有关。来自芬兰218公顷土地上150个采样点的土壤调查数据被用于地质统计学预测黏土百分比的空间变化。将具有熔核成分的指数模型和球形模型拟合到实验变异函数。这表明可以对中距离模式进行建模,但是由于短距离采样点的稀疏性而无法对短距离变化进行建模。使用随机模拟方法评估了采样密度对克里金误差的影响。使用球面模型进行的克里金法产生的地图中,粘土百分比平滑变化。当样本密度增加时,克里金估计的标准误差仅略有下降。根据粘土百分比将预测分为三类。粘土含量低于30%,介于30%和60%之间以及超过60%的区域分别属于非粘土,粘土和重粘土区域。利用土壤样品中有关养分和有机质含量的其他信息,这些地区可以作为农业管理区。

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