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Performance evaluation of CMIP6 global climate models for selecting models for climate projection over Nigeria

机译:CMIP6全球气候模型对尼日利亚气候投影模型的绩效评估

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摘要

This study assessed the performances of 13 global climate models (GCMs) of the CMIP6 in replicating precipitation and maximum and minimum temperatures over Nigeria during 1984-2014 period in order to identify the best GCMs for multi-model ensemble aggregation for climate projection. The study uses the monthly full reanalysis precipitation product version 6 of the Global Precipitation Climatology Centre and the maximum and minimum temperature CRU version TS v. 3.23 products of the Climatic Research Unit as reference data. The study applied five statistical indices, namely, normalized root mean square error, percentage of bias, Nash-Sutcliffe efficiency, coefficient of determination, and volumetric efficiency. Compromise programming (CP) was then used in the aggregation of the scores of the different GCMs for the variables. Spatial assessment, probability distribution function, Taylor diagram, and mean monthly assessments were used in confirming the findings from the CP. The study revealed that CP was able to uniformly evaluate the GCMs even though there were some contradictory results in the statistical indicators. Spatial assessment of the GCMs in relation to the observed showed the highest ranked GCMs by the CP were able to better reproduce the observed properties. The least ranking GCMs were observed to have both spatially overestimated or underestimated precipitation and temperature over the study area. In combination with the other measures, the GCMs were ranked using the final scores from the CP. IPSL-CM6A-LR, NESM3, CMCC-CM2-SR5, and ACCESS-ESM1-5 were the highest ranking GCMs for precipitation. For maximum temperature, INM.CM4-8, BCC-CSM2-MR, MRI-ESM2-0, and ACCESS-ESM1-5 ranked the highest, while AWI-CM-1-1-MR, IPSL-CM6A-LR, INM.CM5-0, and CanESM5 ranked the highest for minimum temperature.
机译:本研究评估了CMIP6的13个全球气候模型(GCMS)的性能,以在1984 - 2014年期间复制尼日利亚的降水和最低和最低温度,以确定用于气候投影的多模型集合的最佳GCM。该研究采用全球降水温度中心的每月全重新分析降水量6,最大和最小温度CRU版本TS v。3.23活跃研究单位作为参考数据。该研究应用了五个统计指数,即归一化的根均方误差,偏置百分比,纳什 - Sutcriffe效率,测定系数和体积效率。然后将折衷程序(CP)用于变量的不同GCM的分数的聚合中。空间评估,概率分布函数,泰勒图和平均月度评估用于确认CP的发现。该研究表明,即使统计指标有一些矛盾的结果,CP也能够统一评估GCM。关于观察到的GCMS的空间评估显示CP的最高排名的GCM能够更好地再现观察到的性质。观察到最小排名的GCMS在研究区域上具有空间过高或低估的沉淀和温度。与其他措施相结合,使用来自CP的最终评分排列GCMS。 IPSL-CM6A-LR,NESM3,CMCC-CM2-SR5和ACCESS-ESM1-5是降水排名最高的GCM。最高温度,INM.CM4-8,BCC-CSM2-MR,MRI-ESM2-0和ACCESS-ESM1-5排名最高,而AWI-CM-1-1-MR,IPSL-CM6A-LR,INM .cm5-0和canesm5排名最高的最高温度。

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    《Theoretical and applied climatology》 |2021年第2期|599-615|共17页
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    Seoul Natl Univ Sci & Technol Dept Civil Engn Seoul 01811 South Korea|Fed Univ Dutse Fac Sci Dept Environm Sci Dutse 7156 Nigeria;

    Seoul Natl Univ Sci & Technol Dept Civil Engn Seoul 01811 South Korea;

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