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(00239)A Computationally Efficient Metamodeling-Based Approach for the Automatic Calibration of Coupled Hydrodynamic and Water Quality Models

机译:(00239)用于耦合流体动力学和水质模型的自动校准的计算上有效的基于元模拟方法

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Computational budget is a severe limitation on the automatic calibration of expensive hydrodynamic and water quality models. To tackle this limitation, the present work formulated a metamodeling-based approach for parameter estimation of such models and assessed the computational gains of this approach compared to a benchmark alternative (a derivative-free optimization method). A response surface proxy of the original model was designed to emulate the behavior of the underlying system, employing Latin hypercube sampling as a strategy for the design of computer experiments and kriging as the technique for the analysis of computer experiments. The response surface proxy of the original model was employed in the automatic fine-tuning of model parameters and, finally, the computational gain over the benchmark alternative was estimated. The metamodeling-based approach was tested in the calibration of the hydrodynamic and water quality models of two water reservoirs. The benchmark alternative analysis indicated that the metamodeling-based approach required 20% to 38% less function evaluations to reach a solution with the same quality compared to the benchmark alternative.
机译:计算预算是对昂贵的流体动力学和水质模型的自动校准的严重限制。为了解决这个限制,本作本工作制定了一种基于元的参数估计方法,并与基准替代方案(无衍生优化方法)相比评估了这种方法的计算增益。设计原始模型的响应曲面代理旨在模拟底层系统的行为,采用拉丁超立体采样作为计算机实验设计和Kriging作为计算机实验分析技术的策略。原始模型的响应表面代理在模型参数的自动微调中采用,最后,估计基准替代方案的计算增益。在两个水库的流体动力学和水质模型的校准下测试了基于元的方法。基准替代分析表明,与基准替代方案相比,基于元的基于元的方法需要20%至38%的函数评估,以达到具有相同质量的解决方案。

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