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Mixed-point geostatistical simulation: A combination of two- and multiple-point geostatistics

机译:混合点地统计模拟:两点和多点地统计的组合

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摘要

Multiple-point-based geostatistical methods are used to model complex geological structures. However, a training image containing the characteristic patterns of the Earth model has to be provided. If no training image is available, two-point (i.e., covariance-based) geostatistical methods are typically applied instead because these methods provide fewer constraints on the Earth model. This study is motivated by the case where 1-D vertical training images are available through borehole logs, whereas little or no information about horizontal dependencies exists. This problem is solved by developing theory that makes it possible to combine information from multiple- and two-point geostatistics for different directions, leading to a mixed-point geostatistical model. An example of combining information from the multiple-point-based single normal equation simulation algorithm and two-point-based sequential indicator simulation algorithm is provided. The mixed-point geostatistical model is used for conditional sequential simulation based on vertical training images from five borehole logs and a range parameter describing the horizontal dependencies.
机译:基于多点的地统计方法用于对复杂的地质结构进行建模。但是,必须提供包含地球模型特征模式的训练图像。如果没有可用的训练图像,则通常采用两点(即基于协方差的)地统计方法,因为这些方法对地球模型的约束较少。可以通过井眼测井获得一维垂直训练图像,而很少或根本没有关于水平依赖性的信息的情况激发了这项研究。通过发展理论解决了这个问题,该理论使得有可能组合来自不同方向的多点和两点地统计信息,从而形成一个混合点地统计模型。提供了将来自基于多点的单法线方程模拟算法和基于两点的顺序指示器模拟算法的信息进行组合的示例。基于来自五个钻孔测井的垂直训练图像和描述水平依赖性的范围参数,混合点地统计模型用于条件顺序模拟。

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