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Automatic generation of large ensembles for air quality forecasting using the Polyphemus system

机译:使用Polyphemus系统自动生成大型合奏以进行空气质量预测

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This paper describes a method to automatically generate a large ensemble of air quality simulations. This is achieved using the Polyphemus system, which is flexible enough to build various different models. The system offers a wide range of options in the construction of a model: many physical parameterizations, several numerical schemes and different input data can be combined. In addition, input data can be perturbed. In this paper, some 30 alternatives are available for the generation of a model. For each alternative, the options are given a probability, based on how reliable they are supposed to be. Each model of the ensemble is defined by randomly selecting one option per alternative. In order to decrease the computational load, as many computations as possible are shared by the models of the ensemble. As an example, an ensemble of 101 photochemical models is generated and run for the year 2001 over Europe. The models' performance is quickly reviewed, and the ensemble structure is analyzed. We found a strong diversity in the results of the models and a wide spread of the ensemble. It is noteworthy that many models turn out to be the best model in some regions and some dates.
机译:本文介绍了一种自动生成大型空气质量模拟集合的方法。这是使用Polyphemus系统实现的,该系统足够灵活以构建各种不同的模型。该系统在构建模型时提供了广泛的选择:可以组合许多物理参数化,几种数值方案和不同的输入数据。此外,输入数据可能会受到干扰。在本文中,可以使用约30种替代方法来生成模型。对于每种选择,都基于选项的可靠性为它们提供了概率。通过每个替代方案随机选择一个选项来定义集成的每种模型。为了减少计算负担,集成模型共享尽可能多的计算。例如,生成了101个光化学模型的集合,并在2001年在欧洲运行。快速评估模型的性能,并分析整体结构。我们在模型的结果中发现了很大的差异,并且集合的分布也很广泛。值得注意的是,许多模型在某些地区和某些日期被证明是最佳模型。

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