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首页> 外文期刊>Journal of Applied Meteorology and Climatology >The RheaG Weather Generator Algorithm: Evaluation in Four Contrasting Climates from the Iberian Peninsula
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The RheaG Weather Generator Algorithm: Evaluation in Four Contrasting Climates from the Iberian Peninsula

机译:rheag天气发生器算法:伊比利亚半岛四个对比气候的评估

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This paper describes the assumptions, equations, and procedures of the RheaG weather generator algorithm (WGA). RheaG was conceived for the generation of robust daily meteorological time series, whether in static or transient climate conditions. Here we analyze its performance in four Iberian locationsBilbao, Barcelona, Madrid, and Sevillawith differentiated climate characteristics. To validate the RheaG WGA, we compared observed and generated meteorological time series' statistical properties of precipitation, maximum temperature, and minimum temperature for all four locations. We also compared observed and simulated rain events spell length probabilities in all four locations. Finally, RheaG includes two weather generation procedures: one in which monthly mean values for meteorological variables are unconstrained and one in which they are constrained according to a predefined baseline climate variability. Here, we compare the two weather generation procedures included in RheaG using the observed data from Barcelona. Our results present a high agreement in the statistical properties and the rain spell length probabilities between observed and generated meteorological time series. Our results show that RheaG accurately reproduces seasonal patterns of the observed meteorological time series for all four locations, and it is even able to differentiate two climatic seasons in Bilbao that are also present in the observed data. We find a trade-off between generation procedures in which the unconstrained procedure better reproduces the variability of monthly and yearly precipitation than the constrained one, but the constrained procedure is able to keep the same climatic signal across meteorological time series. Thus, the first procedure is more accurate, but the latter is able to maintain spatial autocorrelation among generated meteorological time series.
机译:本文介绍了rheaG天气发生器算法(WGA)的假设,方程和程序。无论是在静态或短暂的气候条件下,都被构思为生成稳健的日常气象时间序列。在这里,我们分析了四个伊伯利亚地区贩运,巴塞罗那,马德里和塞维利亚差异化气候特征的表现。为了验证RHEAG WGA,我们比较了观察到的和产生了所有四个位置的沉淀,最高温度和最小温度的气象时间序列的统计性质。我们还比较了观察到的和模拟雨事件在所有四个地点中的拼写长度概率。最后,RHEAG包括两个天气生成程序:其中气象变量的月平均值是无关紧要的,并且它们根据预定义的基线气候变化来限制其中一个。在这里,我们使用来自巴塞罗那的观察数据进行比较rhea中包含的两个天气生成过程。我们的结果在观察和生成的气象时间序列之间存在高度协议,统计性质和雨法规格概率。我们的研究结果表明,RHEAG为所有四个地点准确地再现了观察到的气象时间序列的季节性模式,甚至能够区分毕尔巴鄂的两个气候季节,这些季节也在观察到的数据中存在。我们在产生程序之间找到一个权衡,其中不受约束的程序更好地再现每月和年降水的变化而不是受约束的,但受约束的程序能够在气象时间序列中保持相同的气候信号。因此,第一过程更准确,但后者能够在产生的气象时间序列中保持空间自相关。

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