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首页> 外文期刊>Scientia Agricola >Spatial prediction of soil properties in two contrasting physiographic regions in Brazil
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Spatial prediction of soil properties in two contrasting physiographic regions in Brazil

机译:巴西两个不同的自然地理区域土壤特性的空间预测

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This study compared the performance of ordinary kriging (OK) and regression kriging (RK) to predict soil physical-chemical properties in topsoil (0-15 cm). Mean prediction of error and root mean square of prediction error were used to assess the prediction methods. Two watersheds with contrasting soil-landscape features were studied, for which the prediction methods were performed differently. A multiple linear stepwise regression model was performed with RK using digital terrain models (DTMs) and remote sensing images in order to choose the best auxiliary covariates. Different pedogenic factors and land uses control soil property distributions in each watershed, and soil properties often display contrasting scales of variability. Environmental covariables and predictive methods can be useful in one site study, but inappropriate in another one. A better linear correlation was found at Lavrinha Creek Watershed, suggesting a relationship between contemporaneous landforms and soil properties, and RK outperformed OK. In most cases, RK did not outperform OK at the Marcela Creek Watershed due to lack of linear correlation between covariates and soil properties. Since alternatives of simple OK have been sought, other prediction methods should also be tested, considering not only the linear relationships between covariate and soil properties, but also the systematic pattern of soil property distributions over that landscape.
机译:这项研究比较了普通克里金法(OK)和回归克里金法(RK)的性能,以预测表土(0-15厘米)中土壤的物理化学性质。使用误差的均值预测和预测误差的均方根来评估预测方法。研究了两个具有相反土壤-景观特征的流域,对其预测方法进行了不同的处理。为了选择最佳辅助协变量,使用数字地形模型(DTM)和遥感图像对RK进行了多元线性逐步回归模型。不同的成岩因子和土地利用控制着每个流域的土壤性质分布,并且土壤性质通常显示出不同的可变尺度。环境协变量和预测方法在一项现场研究中可能有用,但在另一项现场研究中则不合适。在Lavrinha Creek流域发现了更好的线性相关性,表明同期地形与土壤特性之间的关系,并且RK优于OK。在大多数情况下,由于协变量与土壤特性之间缺乏线性相关性,RK在Marcela Creek流域的表现不佳。由于已经寻求简单OK的替代方法,因此还应该测试其他预测方法,不仅要考虑协变量和土壤特性之间的线性关系,还要考虑该景观上土壤特性分布的系统模式。

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