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Managing geological uncertainty in expensive reservoir simulation optimization

机译:管理昂贵水库模拟优化的地质不确定性

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A method to manage geological uncertainty as part of an expensive simulation-based optimization process is presented. When the number of realizations representing the uncertainty is high, the computational cost to optimize the system can be considerable, and often prohibitively, as each forward evaluation is expensive to evaluate. To overcome this limitation, an iterative procedure is developed that selects a subset of realizations, based on a binary nonlinear optimization subproblem, to match the statistical properties of the target function at known sample points. This results in a reduced-order model that is optimized in place of the full system at a much lower computational cost. The result is validated over the ensemble of all realizations giving rise to one new sample point per iteration. The process repeats until the stipulated stopping conditions are met. Demonstration of the proposed method on a publicly available realistic reservoir model with 50 realizations shows that comparable results to full optimization can be obtained but far more efficiently.
机译:提出了一种管理地质不确定性的方法,作为昂贵的基于仿真的优化过程的一部分。当代表不确定性的实现的数量很高时,优化系统的计算成本可以相当大,并且通常是监测的,因为每个前进评估都很昂贵。为了克服这种限制,开发了一种基于二进制非线性优化子问题的实现的迭代过程,以匹配已知采样点的目标函数的统计特性。这导致阶阶模型以低得多的计算成本来解决整个系统。结果通过所有实现的集合验证,从而产生了每次迭代的一个新样本点。该过程重复,直到满足规定的停止条件。在具有50种变化的公开现实储层模型上的提出方法示范表明,可以获得与完全优化的可比结果更有效。

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