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Optimization under worst case constraints-a new global multimodel search procedure

机译:最坏情况下的优化-一种新的全局多模型搜索程序

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摘要

A new method is presented that combines heuristic global optimization and multi-model simulation for reliability based risk averse design. The so-called new stack ordering method is motivated from hydrogeology, where high-reliable groundwater management solutions are sought for with a demanding set of equally probable model alternatives. The idea is to only exploit a small subset of these model alternatives or realizations to approximate the objective function to reduce computational costs. The presented automatic procedure dynamically adjusts the subset online during the course of iterative optimization. The test with theoretical reliability based benchmark problems shows that the new method is efficient in regard to optimality and reliability of found solutions already with small subsets of all models. Compared with a previously presented first version of stack ordering, the presented generalized approach proves to be more robust, computationally efficient and of great potential for related problems in reliability based optimization and design. This conclusion is supported by the fact that the new variant requires about one fifth of the objective function evaluations of the older version in order to achieve the same level of reliability. We also show that these findings can be translated to real world problems by benchmarking the performance on a well capture problem.
机译:提出了一种结合启发式全局优化和多模型仿真的基于可靠性的风险规避设计的新方法。所谓的新的堆栈排序方法是从水文地质学出发的,在水文地质学中,人们寻求高可靠的地下水管理解决方案,并提出了一套要求严格的等概率模型替代方案。想法是仅利用这些模型替代方案或实现的一小部分来近似目标函数,以减少计算成本。所提出的自动过程在迭代优化过程中在线动态调整子集。对基于理论可靠性的基准问题进行的测试表明,该新方法对于已经具有所有模型的较小子集的已找到解决方案的最优性和可靠性而言是有效的。与先前介绍的堆栈排序的第一个版本相比,本文提出的通用方法被证明是更健壮,计算效率更高,并且在基于可靠性的优化和设计中具有解决相关问题的巨大潜力。这一结论得到以下事实的支持:新变体大约需要较旧版本的目标函数评估中的五分之一,才能实现相同水平的可靠性。我们还表明,通过对良好捕获问题的性能进行基准测试,可以将这些发现转化为现实问题。

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