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Two approaches to direct block-support conditional co-simulation

机译:直接块支持条件协同仿真的两种方法

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Change of support is a common issue in the geosciences when the volumetric support of the available data is smaller than that of the blocks on which numerical modeling is required. In this paper, we present two algorithms for the direct block-support simulation of cross-correlated random fields that are monotonic transforms of stationary Gaussian random fields. The first algorithm is a variation of sequential Gaussian co-simulation, in which each block value is simulated in turn, conditionally to the original data and to the previously simulated block values, while the second algorithm is based on spectral co-simulation in the framework of the discrete Gaussian change-of-support model. These two algorithms are implemented in computer programs and applied to a synthetic case study and to a mining case study. Their properties and performances are compared and discussed.
机译:当可用数据的体积支撑小于需要数值建模的区块的体积支撑时,支撑的变化是地球科学中的常见问题。在本文中,我们提出了两种用于交叉相关随机字段的直接块支持模拟的算法,这些算法是平稳高斯随机字段的单调变换。第一种算法是顺序高斯协同仿真的一种变体,其中每个块值依次有条件地针对原始数据和先前模拟的块值进行仿真,而第二种算法基于框架中的频谱协同仿真离散高斯支持变化模型。这两种算法在计算机程序中实现,并应用于综合案例研究和采矿案例研究。对它们的性能和性能进行了比较和讨论。

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