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Interpolating sparse scattered data using flow information

机译:使用流信息插值稀疏的分散数据

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Scattered data interpolation and approximation techniques allow for the reconstruction of a scalar field based upon a finite number of scattered samples of the field. In general, the fidelity of the reconstruction with respect to the original scalar field tends to deteriorate as the number of samples decreases. For the situation of very sparse sampling, the results may not be acceptable at all. However, if it is known that the scalar field of interest is correlated with a known flow field - as is the case when the scalar field represents the value of an oceanographic tracer that propagates under the influence of the ocean's flow - then this knowledge can be exploited to enhance the scattered data reconstruction method. One way to exploit flow field information is to use it to construct a modified notion of distance between points. Replacing the standard Euclidean distance metric with a flow-field-aware notion of distance provides a method for extending standard scattered data interpolation methods into flow -based methods that produce superior results for very sparse data. The resulting reconstructions typically have lower root-mean-square errors than reconstructions that do not use the flow information, and qualitatively they often appear physically more realistic. (C) 2016 Elsevier B.V. All rights reserved.
机译:散射数据插值和逼近技术可基于有限数量的场分散样本来重建标量场。通常,随着样本数量的减少,重建相对于原始标量场的保真度趋于恶化。对于非常稀疏的情况,结果可能根本无法接受。但是,如果已知感兴趣的标量场与已知流场相关联(例如,当标量场表示在海洋流的影响下传播的海洋示踪剂的值时就是这种情况),则可以利用以增强分散数据重建方法。利用流场信息的一种方法是使用它来构造点之间的距离的修改概念。用距离流场感知的距离概念代替标准欧几里得距离度量标准,提供了一种将标准分散数据插值方法扩展为基于流的方法的方法,该方法可为非常稀疏的数据产生出色的结果。与不使用流信息的重建相比,所得的重建通常具有更低的均方根误差,并且从质上说,它们通常看起来在物理上更真实。 (C)2016 Elsevier B.V.保留所有权利。

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