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Data Normalisation-Based Solar Irradiance Forecasting Using Artificial Neural Networks

机译:基于数据规范化的使用人工神经网络的太阳辐照法预测

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Due to continual day-to-day increase in electricity demand, and hazardous and critical threats of fossil fuels to the environment,researchers are scrutinizing over substitute energy sources. Solar radiation intensity prediction is essential for conductingvarious research work in the emerging field of Renewable Energy Sources (RESs). This paper has presented developmentof monthly averaged solar radiation intensity prediction model by employing Artificial Neural Network (ANN) algorithm.Various meteorological parameters have been considered over period of 2 years to execute forecasting for Chandigarh, India.Different normalisation techniques such as min-max, decimal and z-score have been utilised to normalise database. Structureand parameter learning of ANNs has been carried out. Comparative analysis has been done to select optimal architecturebased on different performance evaluation measures such as mean square error (MSE), mean absolute percentage error(MAPE), mean absolute error (MAE), and correlation coefficient (R-value) and training time. The network topology withleast forecasting errors, higher R-value has been found to be optimum and further simulated for predicting monthly averagedsolar radiation intensity for Chandigarh region.
机译:由于持续的日常电力需求增加,以及对环境的化石燃料的危险和危险威胁,研究人员正在仔细审查替代能源。太阳辐射强度预测对于进行是必不可少的可再生能源(RESS)新兴领域的各种研究工作。本文提出了发展采用人工神经网络(ANN)算法每月平均太阳辐射强度预测模型。各种气象参数已被认为是2年来执行印度昌迪加尔的预测。已经利用了不同的归一化技术,例如Min-Max,十进制和Z分数来规范数据库。结构并进行了ANNS的参数学习。比较分析已经完成了选择最佳架构基于不同的性能评估措施,例如均方误差(MSE),平均绝对百分比误差(MAPE),平均绝对误差(MAE)和相关系数(R值)和培训时间。网络拓扑最少预测错误,已经发现较高的R值是最佳的,并进一步模拟以预测月度平均值昌迪加地区的太阳辐射强度。

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