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Optimal Location Design for Prediction of Spatial Correlated Environmental Functional Data

机译:空间相关环境功能数据预测的最优定位设计

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The optimal choice of sites to make spatial prediction is critical for a better understanding of really spatio-temporal data. It is important to obtain the essential spatio-temporal variability of the process in determining optimal design, because these data tend to exhibit both spatial and temporal variability. Two new methods of prediction for spatially correlated functional data are considered. The first method models spatial dependency by fitting variogram to empirical variogram, similar to ordinary kriging (univariate approach). The second method models spatial dependency by linear model co-regionalization (multivariate approach). The variance of prediction method was chosen as the optimization design criterion. An application to CO concentration forecasting was conducted to examine possible differences between the design and the optimal design without considering temporal structure.
机译:为了更好地理解真正的时空数据,站点的最佳选择对于更好地了解了空间预测至关重要。在确定最佳设计时,获得该过程的基本时空变化非常重要,因为这些数据倾向于表现出空间和时间变异性。考虑了两种对空间相关功能数据预测的新方法。第一种方法通过拟合变形仪拟合普通克里格(单变量方法)来模拟空间依赖性的空间依赖性。第二种方法模型通过线性模型协同区域化(多变量方法)模型空间依赖性。选择预测方法的方差被选为优化设计标准。进行了CO浓度预测的应用,以检查设计与最佳设计之间的差异,而不考虑时间结构。

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