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首页> 外文期刊>Mathematical geosciences >Reconstruction of Incomplete Data Sets or Images Using Direct Sampling
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Reconstruction of Incomplete Data Sets or Images Using Direct Sampling

机译:使用直接采样重建不完整的数据集或图像

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With increasingly sophisticated acquisition methods, the amount of data available for mapping physical parameters in the geosciences is becoming enormous. If the density of measurements is sufficient, significant non-parametric spatial statistics can be derived from the data. In this context, we propose to use and adapt the Direct Sampling multiple-points simulation method (DS) for the reconstruction of partially informed images. The advantage of the proposed method is that it can accommodate any data disposition and that it can indifferently deal with continuous and categorical variables. The spatial patterns found in the data are mimicked without model inference. Therefore, very few assumptions are required to define the spatial structure of the reconstructed fields, and very limited parameterization is needed to make the proposed approach extremely simple from a user perspective. The different examples shown in this paper give appealing results for the reconstruction of complex 3D geometries from relatively small data sets.
机译:随着日益复杂的采集方法,可用于绘制地球科学中的物理参数的数据量变得越来越大。如果测量的密度足够,则可以从数据中得出重要的非参数空间统计信息。在这种情况下,我们建议使用直接采样多点模拟方法(DS)并对其进行改编,以重建部分信息图像。所提出的方法的优点是它可以容纳任何数据配置,并且可以无差别地处理连续和分类变量。在没有模型推断的情况下,模拟了数据中发现的空间模式。因此,需要很少的假设来定义重构场的空间结构,并且需要非常有限的参数化以从用户的角度使所提出的方法极其简单。本文显示的不同示例为从相对较小的数据集重建复杂3D几何提供了引人入胜的结果。

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