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STOCHASTIC MODELING OF PERMEABILITY IN DOUBLE POROSITY CARBONATES APPLYING A MONTE-CARLO SIMULATION METHOD WITH t-COPULAS

机译:用T-Copulas应用Monte-Carlo仿真方法的双孔隙碳酸盐碳酸纤维磁性的随机造型

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Copulas are a new way of modeling the correlation structure between variables. Over the past forty years copulas have played an important role in several areas of statistics. But, only recently copulas have become popular in simulation models. Copulas are functions that describe dependencies among variables, and provide a way to create distributions to model correlated multivariate data. Using a copula, a data analyst can construct a multivariate distribution by specifying marginal univariate distributions, and choosing a particular copula to provide a correlation structure between variables. In the present work, we explore how to use copulas for the modeling of permeability values associated with the secondary porosity in carbonate formations. This can be made using the Monte-Carlo method with a copula which reproduces the observed dependence patterns of the permeability-secondary porosity bivariate distribution. In particular, we apply a bivariate t - copula and the empirical model for the marginal distributions of secondary porosity and permeability in conjunction with different association measures such as Kendall’s τK and Spearman's ρS. The method presented does not need the assumption of linear dependence and has the ability to reproduce extreme values and the variability of the data samples. A brief discussion on how to produce dependent joint geostatistical simulations of permeability-secondary porosity using NMR permeability and conventional logs associated with secondary porosity is presented.
机译:Copulas是建模变量之间的相关结构的新方法。在过去的四十年中,Copulas在几个统计领域发挥了重要作用。但是,只有最近的Copulas在仿真模型中变得流行。 Copulas是描述变量之间依赖性的函数,并提供创建分布以模拟相关多变量数据的方法。使用Copula,数据分析师可以通过指定边际单变量分布来构造多变量分布,并选择特定的Copula以提供变量之间的相关结构。在本作工作中,我们探讨如何使用Copulas进行碳酸酯组中辅助孔隙相关的渗透值的建模。这可以使用具有谱系的蒙特卡罗方法制造,该谱系再现渗透性二级孔隙率分布的观察到的依赖性模式。特别是,我们将二次孔隙率和渗透率的边际分布和渗透率的实证模型应用于不同的关联措施,如肯德尔的τk和斯帕曼的ρs。所呈现的方法不需要对线性依赖的假设,并且具有重现极端值的能力和数据样本的可变性。介绍如何使用NMR渗透性和常规原木产生如何生产渗透性级孔隙率的依赖性联合地质静态统计模拟和与二次孔隙率相关的常规原木。

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