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Heterogeneous reservoir characterization using efficient parameterization through higher order SVD (HOSVD)

机译:通过高阶SVD(HOSVD)使用有效的参数化方法进行非均质储层表征

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Parameter estimation through reduced-order modeling play a pivotal role in designing real-time optimization schemes for the Oil and Gas upstream sector through the closed-loop reservoir management framework. Reservoir models are in general complex, nonlinear, and large-scale, i.e., large number of states and unknown parameters. Consequently, model reduction techniques are of great interest in reducing the computational burden in reservoir modeling and simulation. Furthermore, de-correlating system parameters in all history matching and reservoir characterization problems is an important task due to its effects on reducing ill-posedness of the system. In this paper, we utilize the higher order singular value decomposition (HOSVD) to reparameterize reservoir characteristics, e.g. permeability, and perform several forward reservoir simulations by the resulted reduced order map as an input. To acquire statistical consistency we repeat all experiments for a set of 1000 samples using both HOSVD and Proper orthogonal decomposition (POD). In addition, we provide RMSE analysis for a better understanding in process of comparing HOSVD and POD. Results show that HOSVD provide a better performance in a RMSE point of view.
机译:通过闭环储层管理框架,通过降阶建模进行参数估计在为石油和天然气上游行业设计实时优化方案中起着关键作用。储层模型通常是复杂的,非线性的和大规模的,即大量的状态和未知的参数。因此,模型简化技术在减轻油藏建模和模拟的计算负担方面引起了极大的兴趣。此外,在所有历史匹配和储层表征问题中使系统参数去相关是一项重要的任务,因为它对减少系统的不良状况有影响。在本文中,我们利用高阶奇异值分解(HOSVD)重新参数化储层特征,例如渗透率,并通过将得到的降阶图作为输入进行多次前向储层模拟。为了获得统计一致性,我们使用HOSVD和适当的正交分解(POD)对一组1000个样本重复所有实验。此外,我们提供RMSE分析,以便在比较HOSVD和POD的过程中更好地理解。结果表明,从RMSE角度来看,HOSVD提供了更好的性能。

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