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On the numerical integration of the Lorenz-96 model, with scalar additive noise, for benchmark twin experiments

机译:关于Lorenz-96模型的数值集成,具有标量添加噪声,用于基准双床实验

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摘要

Relatively little attention has been given to the impact of discretization error on twin experiments in the stochastic form of the Lorenz-96 equations when the dynamics are fully resolved but random. We study a simple form of the stochastically forced Lorenz-96 equations that is amenable to higher-order time-discretization schemes in order to investigate these effects. We provide numerical benchmarks for the overall discretization error, in the strong and weak sense, for several commonly used integration schemes and compare these methods for biases introduced into ensemble-based statistics and filtering performance. The distinction between strong and weak convergence of the numerical schemes is focused on, highlighting which of the two concepts is relevant based on the problem at hand. Using the above analysis, we suggest a mathematically consistent framework for the treatment of these discretization errors in ensemble forecasting and data assimilation twin experiments for unbiased and computationally efficient benchmark studies. Pursuant to this, we provide a novel derivation of the order 2.0 strong Taylor scheme for numerically generating the truth twin in the stochastically perturbed Lorenz-96 equations.
机译:当动态完全解决时但随机的动态进行时,已经对Lorenz-96方程的随机形式的离散化误差对双重实验的影响相对较少。我们研究了一种简单的形式,即随机强制的Lorenz-96方程式,适用于高阶时间离散化方案,以调查这些效果。对于几种常用的集成方案,我们为整体离散化误差提供了数值基准,以强大而弱的感觉,并比较这些基于集合的统计和过滤性能的这些偏差方法。数字方案的强大和弱收敛之间的区别集中在,突出了两个概念中的哪一个基于手头的问题。使用上述分析,我们建议在集合预测和数据同化双程实验中处理这些离散化误差的数学上一致的框架,以实现无偏见和计算有效的基准研究。根据这一点,我们提供了一个新的推导了2.0强大的泰勒方案,用于数值在随机扰动的Lorenz-96方程中数量产生真相双胞胎。

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