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首页> 外文期刊>Journal of Geophysical Research, D. Atmospheres: JGR >Parametric Sensitivity and Uncertainty Quantification in the Version 1 of E3SM Atmosphere Model Based on Short Perturbed Parameter Ensemble Simulations
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Parametric Sensitivity and Uncertainty Quantification in the Version 1 of E3SM Atmosphere Model Based on Short Perturbed Parameter Ensemble Simulations

机译:基于短扰性参数集合模拟的E3SM气氛模型版本1中的参数灵敏度和不确定量化

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摘要

The atmospheric component of Energy Exascale Earth System Model version 1 has included many new features in the physics parameterizations compared to its predecessors. Potential complex nonlinear interactions among the new features create a significant challenge for understanding the model behaviors and parameter tuning. Using the one-at-a-time method, the benefit of tuning one parameter may offset the benefit of tuning another parameter, or improvement in one target variable may lead to degradation in another target variable. To better understand the Energy Exascale Earth System Model version 1 model behaviors and physics, we conducted a large number of short simulations (three days) in which 18 parameters carefully selected from parameterizations of deep convection, shallow convection, and cloud macrophysics and microphysics were perturbed simultaneously using the Latin hypercube sampling method. From the perturbed parameter ensemble simulations and use of different skill score functions, we identified the most sensitive parameters, quantified how the model responds to changes of the parameters for both global mean and spatial distribution, and estimated the maximum likelihood of model parameter space for a number of important fidelity metrics. Comparison of the parametric sensitivity using simulations of two different lengths suggests that perturbed parameter ensemble using short simulations has some bearing on understanding parametric sensitivity of longer simulations. Results from this analysis provide a more comprehensive picture of the Energy Exascale Earth System Model version 1 behavior. The difficulty in reducing biases in multiple variables simultaneously highlights the need of characterizing model structural uncertainty (so-called embedded errors) to inform future development efforts.
机译:与其前身相比,能量ExaScale地球系统模型版本1的大气成分包括物理参数化中的许多新功能。新功能之间的潜在复杂非线性交互为理解模型行为和参数调整创造了重大挑战。使用单个AT-AT-AT-A-AT-A-A-AT-AT-AT-AT-AT-AT-AT-AT-A-AT-A-AT-AT-AT-AT-A-AT-A-AT-AT-AT-AT-AT-A参数可以抵消调谐另一个参数的益处,或者一个目标变量的改进可能导致另一个目标变量中的劣化。为了更好地了解能源ExaScale地球系统模型版本1模型行为和物理,我们进行了大量的短仿真(三天),其中从深道对流,浅对流和云映射和微妙的参数中仔细选择了18个参数扰乱了同时使用拉丁超立体采样方法。从扰动参数集合模拟和不同技能分数函数的使用,我们确定了最敏感的参数,量化了模型如何响应全局均值和空间分布的参数的变化,并估计模型参数空间的最大可能性重要保真度量的数量。使用两种不同长度的模拟的参数灵敏度的比较表明,使用短仿真的扰动参数集合有一些轴承了了解较长模拟的参数灵敏度。该分析的结果提供了更全面的能源Exascale地球系统模型版本1行为的图片。在多个变量中减少偏差的困难同时突出了表征模型结构不确定性(所谓的嵌入式错误)以告知未来的开发工作。

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