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Comparison of stochastic parameterizations in the framework of a coupled ocean–atmosphere model

机译:海洋-大气耦合模型框架下的随机参数化比较

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A new framework is proposed for the evaluation of stochastic subgrid-scale parameterizations in the context of the Modular Arbitrary-Order Ocean-Atmosphere Model (MAOOAM), a coupled ocean–atmosphere model of intermediate complexity. Two physically based parameterizations are investigated – the first one based on the singular perturbation of Markov operators, also known as homogenization. The second one is a recently proposed parameterization based on Ruelle's response theory. The two parameterizations are implemented in a rigorous way, assuming however that the unresolved-scale relevant statistics are Gaussian. They are extensively tested for a low-order version known to exhibit low-frequency variability (LFV), and some preliminary results are obtained for an intermediate-order version. Several different configurations of the resolved–unresolved-scale separations are then considered. Both parameterizations show remarkable performances in correcting the impact of model errors, being even able to change the modality of the probability distributions. Their respective limitations are also discussed.
机译:提出了一个新的框架,用于在模块化任意阶海洋-大气模型(MAOOAM)(一种中等复杂程度的海洋-大气耦合模型)的背景下评估随机亚网格规模参数。研究了两个基于物理的参数化-第一个基于Markov算子的奇异摄动,也称为均质化。第二个是最近提出的基于Ruelle响应理论的参数化。假设未解决规模的相关统计数据是高斯模型,则以严格的方式实现这两个参数化。他们针对已知表现出低频可变性(LFV)的低阶版本进行了广泛的测试,并获得了中阶版本的一些初步结果。然后考虑解析度-未解析度分离的几种不同配置。两种参数化在校正模型误差的影响方面均表现出卓越的性能,甚至能够更改概率分布的模态。还讨论了它们各自的局限性。

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