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Enhanced Simulation-Optimization Approach Using Surrogate Modeling for Solving Inverse Problems

机译:改进的使用代理模型求解逆问题的仿真优化方法

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This study investigates and discusses groundwater system characterization problem utilizing surrogate modeling. In this inverse problem, the contaminant signals at monitoring wells are recorded to recreate the pollution profiles. In this study, simulation-optimization approach is a technique utilized to solve inverse problems by formulating them as an optimization model, where evolutionary computation algorithms are used to perform the search. In this approach, the partial differential equations (PDE) groundwater transport simulation model is solved iteratively during the evolutionary search, which in general can be computationally expensive since thousands of simulation model evaluations will be evaluated. To overcome this limitation, the simulation model is replaced by a surrogate model, which is computationally much faster than the simulation model and yet is relatively accurate. Artificial neural networks (ANN) is used to construct surrogate models that provide acceptable accuracy performances. The ANN surrogate model, which replaces the PDE groundwater transport simulation model, is then coupled with a genetic algorithm (GA) search procedure to solve the source identification problem. The results will present the quality solution of the ANN surrogate model versus the groundwater simulation model, the solution of the inverse problem for different experiment scenarios and finally a timing study analysis conducted to measure the surrogate model performance.
机译:本研究利用替代模型研究和讨论了地下水系统的表征问题。在这个反问题中,记录监测井处的污染物信号以重新创建污染曲线。在这项研究中,模拟优化方法是一种通过将逆方程式表示为优化模型来解决逆问题的技术,其中使用进化计算算法来执行搜索。在这种方法中,在演化搜索过程中迭代求解偏微分方程(PDE)地下水运移模拟模型,由于要评估成千上万个模拟模型,因此通常计算量大。为了克服此限制,将模拟模型替换为替代模型,该模型在计算上比模拟模型快得多,但相对准确。人工神经网络(ANN)用于构建替代模型,以提供可接受的精度性能。 ANN替代模型取代了PDE地下水运移模拟模型,然后与遗传算法(GA)搜索程序结合,解决了源识别问题。结果将提供ANN替代模型相对于地下水模拟模型的质量解决方案,针对不同实验场景的反问题的解决方案,以及最后进行的时间研究分析以测量替代模型的性能。

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