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A method to generate fully multi-scale optimal interpolation by combining efficient single process analyses, illustrated by a DINEOF analysis spiced with a local optimal interpolation

机译:一种通过结合有效的单过程分析来生成完全多尺度最优插值的方法,该方法以DINEOF分析与局部最优插值相加为例

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We present a method in which the optimal interpolation of multi-scale processes can be expanded into a succession of simpler interpolations. First, we prove how the optimal analysis of a superposition of two processes can be obtained by different mathematical formulations involving iterations and analysis focusing on a single process. From the different mathematical equivalent formulations, we then select the most efficient ones by analyzing the behavior of the different possibilities in a simple and well-controlled test case. The clear guidelines deduced from this experiment are then applied to a real situation in which we combine large-scale analysis of hourly Spinning Enhanced Visible and Infrared Imager (SEVIRI) satellite images using data interpolating empirical orthogonal functions (DINEOF) with a local optimal interpolation using a Gaussian covariance. It is shown that the optimal combination indeed provides the best reconstruction and can therefore be exploited to extract the maximum amount of useful information from the original data.
机译:我们提出了一种方法,其中多尺度过程的最佳插值可以扩展为一系列更简单的插值。首先,我们证明如何通过不同的数学公式(包括针对单个过程的迭代和分析)来获得两个过程的叠加的最佳分析。然后,通过在一个简单且控制良好的测试用例中分析不同可能性的行为,从不同的数学等效公式中选择最有效的公式。然后,将从本实验中得出的明确指导原则应用于实际情况,在这种情况下,我们将使用数据插值经验正交函数(DINEOF)与使用局部最优插值的每小时旋转增强型可见光和红外成像仪(SEVIRI)卫星图像的大规模分析相结合高斯协方差。结果表明,最佳组合确实提供了最佳的重构,因此可以用来从原始数据中提取最大数量的有用信息。

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