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Optimizing inverse distance weighted interpolation with cross-validation.

机译:通过交叉验证优化距离反距离加权插值。

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Inverse distance weighted interpolation can be easily optimized with commercially available software by selecting distance exponent values that minimize cross-validation (VCROSS) errors of prediction. The effectiveness of this approach has not been critically evaluated but is of concern because of known limitations of the VCROSS procedure. To evaluate this optimization procedure, it should be validated with an independent data set (VIDS). The objectives of this study were (1) to develop and test an optimization procedure based on VCROSS and VIDS analyses, (2) to test the accuracy of optimization of the VCROSS procedure, and (3) to evaluate the quality of maps created with VCROSS. Soil fertility and bulk soil electrical conductivity data from two previously published studies were used for the analyses. These included prediction and validation data sets for multiple locations. Our optimization procedure compared well with those obtained with a commercially available software program. The use of VCROSS resulted in overprediction of optimal distance exponent values and a substantial reduction in map quality. In many cases, the maps produced with VCROSS optimization were blocky and unrealistic. The VCROSS procedure should not be used to optimize distance exponent values for data collected on regular grids or along transects. Instead, distance exponent values between 1.5 and 2.0 should be used. Software developers should consider creating a VIDS optimizing procedure..
机译:逆距离加权插值可通过选择可最小化预测的交叉验证(VCROSS)误差的距离指数值,使用市售软件轻松优化。该方法的有效性尚未得到严格的评估,但由于VCROSS程序的已知局限性而引起关注。要评估此优化程序,应使用独立的数据集(VIDS)对其进行验证。这项研究的目的是(1)开发和测试基于VCROSS和VIDS分析的优化程序,(2)测试VCROSS程序优化的准确性,以及(3)评估使用VCROSS创建的地图的质量。分析使用了两个之前发表的研究的土壤肥力和土壤电导率数据。这些包括针对多个位置的预测和验证数据集。我们的优化程序与使用市售软件程序获得的优化程序进行了比较。 VCROSS的使用导致最佳距离指数值的过高预测和地图质量的大幅下降。在许多情况下,使用VCROSS优化生成的地图是块状且不现实的。 VCROSS过程不应用于优化在规则网格或沿样条线上收集的数据的距离指数值。而是应使用1.5和2.0之间的距离指数值。软件开发人员应考虑创建VIDS优化过程。

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