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Characterization of Climatic Variations in Spain at the Regional Scale: A Computational Intelligence Approach

机译:西班牙气候变化特征的区域尺度:一种计算智能方法

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摘要

Computational intelligence and other data mining techniques are used for characterizing regional and time varying climatic variations in Spain in the period 1901?2005. Daily maximum temperature data from 10 climatic stations are analyzed (with and without missing values) using principal components (PC), similarity-preservation feature generation, clustering, Kolmogorov-Smirnov dissimilarity analysis and genetic programming (GP). The new features were computed using hybrid optimization (differential evolution and Fletcher-Reeves) and GP. From them, a scalar regional climatic index was obtained which identifies time landmarks and changes in the climate rhythm. The equations obtained with GP are simpler than those obtained with PC and they highlight the most important sites characterizing the regional climate. Whereas the general consensus is that there has been a clear and smooth trend towards warming during the last decades, the results suggest that the picture may probably be much more complicated than what is usually assumed.
机译:计算智能和其他数据挖掘技术用于表征1901-2005年期间西班牙的区域和时变气候变化。使用主成分(PC),相似性保留特征生成,聚类,Kolmogorov-Smirnov相似性分析和遗传规划(GP)对10个气候站的每日最高温度数据进行分析(有无缺失值)。使用混合优化(差分进化和Fletcher-Reeves)和GP计算了新功能。从中获得标量区域气候指数,该指数可确定时间标志和气候节律的变化。用GP获得的方程比通过PC获得的方程更简单,它们突出了表征区域气候的最重要的站点。尽管普遍的共识是,在过去的几十年中,变暖趋势一直存在一个清晰而平稳的趋势,但结果表明,情况可能比通常的假设要复杂得多。

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