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An automatic and effective parameter optimization method for model tuning

机译:一种自动有效的模型优化参数优化方法

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摘要

Physical parameterizations in general circulation models (GCMs), having various uncertain parameters, greatly impact model performance and model climate sensitivity. Traditional manual and empirical tuning of these parameters is time-consuming and ineffective. In this study, a "three-step" methodology is proposed to automatically and effectively obtain the optimum combination of some key parameters in cloud and convective parameterizations according to a comprehensive objective evaluation metrics. Different from the traditional optimization methods, two extra steps, one determining the model's sensitivity to the parameters and the other choosing the optimum initial value for those sensitive parameters, are introduced before the downhill simplex method. This new method reduces the number of parameters to be tuned and accelerates the convergence of the downhill simplex method. Atmospheric GCMsimulation results show that the optimum combination of these parameters determined using this method is able to improve the model's overall performance by 9 %. The proposed methodology and software framework can be easily applied to other GCMs to speed up the model development process, especially regarding unavoidable comprehensive parameter tuning during the model development stage.
机译:具有各种不确定参数的通用循环模型(GCM)中的物理参数设置极大地影响了模型性能和模型气候敏感性。这些参数的传统手动和经验调整非常耗时且无效。在这项研究中,提出了一种“三步法”方法,以根据综合的客观评估指标自动有效地获取云中某些关键参数和对流参数化的最佳组合。与传统的优化方法不同,在下坡单纯形法之前,引入了两个额外的步骤,一个是确定模型对参数的敏感度,另一个是为那些敏感参数选择最佳初始值。这种新方法减少了要调整的参数数量,并加快了下坡单纯形方法的收敛速度。大气GCM模拟结果表明,使用此方法确定的这些参数的最佳组合能够将模型的整体性能提高9%。所提出的方法和软件框架可以轻松地应用于其他GCM,以加快模型开发过程,尤其是在模型开发阶段不可避免的全面参数调整方面。

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