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A Bayesian hierarchical spatio-temporal model for extreme rainfall in Extremadura (Spain)

机译:埃斯特雷马杜拉(西班牙)极端降雨的贝叶斯分层时空模型

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A statistical study was made of the temporal trend in extreme rainfall in the region of Extremadura (Spain) during the period 1961-2009. A hierarchical spatio-temporal Bayesian model with a GEV parameterization of the extreme data was employed. The Bayesian model was implemented in a Markov chain Monte Carlo framework that allows the posterior distribution of the parameters that intervene in the model to be estimated. The results show a decrease of extreme rainfall in winter and spring and a slight increase in autumn. The uncertainty in the trend parameters obtained with the hierarchical approach is much smaller than the uncertainties obtained from the GEV model applied locally. Also found was a negative relationship between the NAO index and the extreme rainfall in Extremadura during winter. An increase was observed in the intensity of the NAO index in winter and spring, and a slight decrease in autumn.
机译:对埃斯特雷马杜拉(西班牙)地区1961-2009年期间极端降雨的时间趋势进行了统计研究。采用具有GEV参数化极端数据的分层时空贝叶斯模型。贝叶斯模型是在马尔可夫链蒙特卡洛框架中实现的,该框架允许估计干预模型的参数的后验分布。结果表明,冬季和春季的极端降雨减少,秋季略有增加。通过分层方法获得的趋势参数的不确定性比从本地应用的GEV模型获得的不确定性小得多。还发现冬季冬季NAO指数与埃斯特雷马杜拉的极端降雨之间存在负相关关系。冬季和春季,NAO指数的强度增加,而秋季则略有下降。

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