首页> 外文期刊>Aceh International Journal of Science and Technology >Comparison Performance of the Multi-Regional Climate Model (RCM) in Simulating Rainfall and Air Temperature in Batanghari Watershed
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Comparison Performance of the Multi-Regional Climate Model (RCM) in Simulating Rainfall and Air Temperature in Batanghari Watershed

机译:多区域气候模型(RCM)在模拟八打哈里流域的降雨和气温中的比较性能

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Many scientists assume that RCM output is directly used as input for climate change impact models, while it consists of systematic errors. Consequently, RCM still requires bias correction to be used as an input model. The purpose of this study was to analyze the RCM performance before and after bias correction, its best performance from several models, as well as to clarify the importance of bias correction before it is used to analyze climate change. As a result of this, the method used for bias correction was Distribution Mapping method (for rainfall) and Average Ratio-method (for air temperature). While the Generalized Extrem Value distribution (GEV) was used to analysis extreme rainfall.?To determine the performance of the model before and after bias correction, statistical analysis was used namelyR 2 , NSE, and RMSE.?Furthermore, ranking for every single model and Taylor Diagram was used to determine the best model. The results showed that the RCMs performance improved with bias correction. However, CSIRO-Mk3-6-0, CCSM4, GFDL-ESM2M, and MPI-ESM-MR models can be ignored as ensemble models, because they demonstrated poor performance in simulating rainfall. From this study, it was suggested that the best model in simulating daily and monthly rainfall was ACCESS1-0, while MIROC-ESM-CHEM (daily air temperature) and ACCESS1-0 (monthly air temperature) were best models used in simulating air temperature.
机译:许多科学家认为,RCM输出直接包含在系统误差中,而直接用作气候变化影响模型的输入。因此,RCM仍然需要将偏差校正用作输入模型。这项研究的目的是分析偏差校正前后的RCM性能,其在多个模型中的最佳性能,并阐明偏差校正在用于分析气候变化之前的重要性。结果,用于偏差校正的方法是分布映射法(用于降雨)和平均比率方法(用于气温)。使用广义极值分布(GEV)来分析极端降雨。为了确定偏差校正前后的模型性能,使用了统计分析R 2,NSE和RMSE。泰勒图用来确定最佳模型。结果表明,通过偏置校正,RCM的性能得以改善。但是,可以将CSIRO-Mk3-6-0,CCSM4,GFDL-ESM2M和MPI-ESM-MR模型忽略为集合模型,因为它们在模拟降雨方面表现不佳。这项研究表明,模拟每日和每月降雨量的最佳模型是ACCESS1-0,而MIROC-ESM-CHEM(每日气温)和ACCESS1-0(每月气温)是模拟空气温度的最佳模型。 。

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