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Modeling complex geological structures with elementary training images and transform-invariant distances

机译:使用基本训练图像和不变变换距离对复杂的地质结构建模

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摘要

We present a new framework for multiple-point simulation involving small and simple training images. The use of transform-invariant distances (by applying random transformations) expands the range of structures available in the simple patterns of the training image. The training image is no longer regarded as a global conceptual geological model, but rather a basic structural element of the subsurface. Complex geological structures are obtained whose spatial structure can be parameterized by adjusting the statistics of the random transformations, on the basis of field data or geological context. In most cases, such parameterization is possible by adjusting two numbers only. This method allows us to build models that (1) reproduce shapes corresponding to a desired prior geological concept and (2) are in phase with different types of field observations such as orientation, hydrofacies, or geophysical measurements. The main advantage is that the training images are so simple that they can be easily built even in 3-D. We apply the method on a synthetic example involving seismic data where the transformation parameters are data-driven. We also show examples where realistic 2- and 3-D structures are built from simplistic training images, with transformation parameters inferred using a small number of orientation data.
机译:我们提出了一种新的多点仿真框架,涉及小的和简单的训练图像。不变变换距离的使用(通过应用随机变换)扩展了训练图像的简单模式中可用结构的范围。训练图像不再被视为全局概念性地质模型,而是地下的基本结构元素。获得了复杂的地质结构,其空间结构可以根据野外数据或地质背景,通过调整随机变换的统计数据来参数化。在大多数情况下,仅通过调整两个数字即可实现这种参数化。这种方法允许我们建立模型,该模型(1)再现与所需的先前地质概念相对应的形状,(2)与不同类型的现场观测(例如方向,水相或地球物理测量)同相。主要优点是训练图像非常简单,即使在3D模式下也可以轻松构建。我们将该方法应用于涉及地震数据的综合示例,其中转换参数由数据驱动。我们还显示了一些示例,其中根据简单的训练图像构建了逼真的2-D和3-D结构,并使用少量的定向数据推断出了转换参数。

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  • 来源
    《Water resources research》 |2011年第7期|p.W07527.1-W07527.14|共14页
  • 作者单位

    National Centre for Groundwater Research and Training, University of New South Wales, Sydney, New South Wales, Australia;

    National Centre for Groundwater Research and Training, University of New South Wales, Sydney, New South Wales, Australia;

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