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Joint metamodeling for sensitivity analysis of continuous and stochastic inputs of a computer code

机译:联合元模型用于对计算机代码的连续和随机输入进行敏感性分析

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To perform the global sensitivity analysis of a complex and cpu time expensive code, a mathematical function built from a small number of simulations referred to as a metamodel can be used to approximate the code. In some applications like oil reservoir simulations, the code output can depend on complex stochastic inputs such as random permeability fields. This paper proposes a new metamodeling approach to perform global sensitivity analysis of both scalar and such type of stochastic input. A joint metamodeling based on two Gaussian process metamodels is proposed to model the mean and the variance. Then, the sensitivity indices of scalar and stochastic inputs are estimated from this joint metamodeling. An application on a reservoir simulator illustrates the overall methodology.
机译:为了对复杂且耗时的cpu代码进行全局敏感性分析,可以使用由少量模拟(称为元模型)构建的数学函数来近似代码。在诸如油藏模拟的某些应用中,代码输出可能取决于复杂的随机输入,例如随机渗透率场。本文提出了一种新的元建模方法,可以对标量和此类随机输入进行全局敏感性分析。提出了基于两个高斯过程元模型的联合元模型来对均值和方差建模。然后,从该联合元模型中估计标量和随机输入的敏感性指数。油藏模拟器上的一个应用程序说明了整个方法。

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