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Statistical Downscaling of Rainfall Under Climate Change in Krishna River Sub-basin of Andhra Pradesh, India Using Artificial Neural Network (ANN)

机译:印度港德拉·普拉德什克里希纳河盆地气候变化下降雨统计镇定

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Due to the very coarse spatial resolution of the different global circulation model (GCM), we cannot use them in their natural form to study the various impacts of climate change. For matching this spatial inequality between the GCMs output (predictor) and historical precipitation data (predictands), we need to establish a relation between them which is known as downscaling. In the present study, we tried to examine the efficiency of the Artificial Neural Network (ANN) with Principal Component Analysis (PCA) for downscaling the rainfall for 3 districts of Andhra Pradesh of India. Firstly, for all the regions, the downscaling was performed by using ANN. Then seasonal and annual analysis was performed based on the R2 and RMSE. The results show that the ANN worked adequately based on the statistical parameters. The study uses the Canadian Earth System Model (CanESM2) of the IPCC Fifth Assessment Report, re-analysis from the National Centre for Environmental Prediction (NCEP) as GCM model, and observed rainfall data as the observed rainfall. The analysis was performed for the three RCPs scenario, RCP 2.6, 4.5 and 8.5. Finally, the ANN model is applied to downscale the precipitation.
机译:由于不同全球循环模型(GCM)的空间分辨率非常粗糙,我们不能以自然形式使用它们来研究气候变化的各种影响。为了匹配GCMS输出(预测器)和历史降水数据(预测和)之间的这种空间不等式,我们需要在它们之间建立一个称为次要的关系。在本研究中,我们试图研究人工神经网络(ANN)的效率与主要成分分析(PCA),用于缩小印度的3区的降雨。首先,对于所有地区,通过使用ANN进行缩小。然后根据R2和RMSE进行季节性和年度分析。结果表明,该安基于统计参数充分工作。该研究采用了IPCC第五评估报告的加拿大地球系统模型(Canesm2),从国家环境预测中心重新分析(NCEP)为GCM模型,并观察到降雨数据作为观察到的降雨。对三个RCP场景,RCP 2.6,4.5和8.5进行分析。最后,ANN模型用于降低降水。

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