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The Weather Generator Used in the Empirical Statistical Downscaling Method, WETTREG

机译:WETTREG经验统计缩减方法中使用的天气生成器

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In this paper, the weather generator (WG) used by the empirical statistical downscaling method WETTREG (weather situation-based regionalization method (in German: WETTerlagen-basierte REGionalisierungsmethode)), is described. It belongs to the class of multi-site parametric models that aim at the representation of the spatial dependence among weather variables with conditioning on exogenous atmospheric predictors. The development of the WETTREG WG was motivated by (i) the requirement of climate impact modelers to obtain input data sets that are consistent and can be produced in a relatively economic way and (ii) the well-sustained hypothesis that large scale atmospheric features are well reproduced by climate models and can be used as a link to regional climate. The WG operates at daily temporal resolution. The conditioning factor is the temporal development of the frequency distribution of circulation patterns. Following a brief description of the strategy of classifying circulation patterns that have a strong link to regional climate, the bulk of this paper is devoted to a description of the WG itself. This includes aspects, such as the utilized building blocks, seasonality or the methodology with which a signature of climate change is imprinted onto the generated time series. Further attention is given to particularities of the WG’s conditioning processes, as well as to extremes, areal representativity and the interface of WGs and user requirements.
机译:本文介绍了经验统计缩减方法WETTREG(基于天气情况的区域化方法(德语:WETTerlagen-basierte REGionalisierungsmethode))所使用的天气生成器(WG)。它属于多站点参数模型的类别,该模型旨在以外部外在预报器为条件来表示天气变量之间的空间依赖性。 WETTREG WG的发展是受以下因素推动的:(i)气候影响建模师要求获得一致的输入数据集,并且可以以相对经济的方式产生该输入数据集;(ii)公认的假设是大规模大气特征是气候模型很好地复制了这些数据,可以用作与区域气候的联系。工作组以每日时间分辨率运行。调节因素是循环模式频率分布的时间发展。在简要介绍了与区域气候密切相关的环流模式分类策略之后,本文的大部分内容专门介绍了工作组本身。这包括各个方面,例如,利用的构建基块,季节性或将气候变化特征标记在生成的时间序列上的方法。工作组的调节过程的特殊性,以及极端性,区域代表性以及工作组与用户需求的接口,都得到了进一步的关注。

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