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Forecasting Daily Precipitation Using Hybrid Model of Wavelet-Artificial Neural Network and Comparison with Adaptive Neurofuzzy Inference System (Case Study: Verayneh Station, Nahavand)

机译:使用小波-人工神经网络混合模型预测每日降水量,并与自适应神经模糊推理系统进行比较(案例研究:Naravand的Verayneh站)

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Doubtlessly the first step in a river management is the precipitation modeling over the related watershed. However, considering high-stochastic property of the process, many models are still being developed in order to define such a complex phenomenon in the field of hydrologic engineering. Recently artificial neural network (ANN) as a nonlinear interextrapolator is extensively used by hydrologists for precipitation modeling as well as other fields of hydrology. In the present study, wavelet analysis combined with artificial neural network and finally was compared with adaptive neurofuzzy system to predict the precipitation in Verayneh station, Nahavand, Hamedan, Iran. For this purpose, the original time series using wavelet theory decomposed to multiple subtime series. Then, these subseries were applied as input data for artificial neural network, to predict daily precipitation, and compared with results of adaptive neurofuzzy system. The results showed that the combination of wavelet models and neural networks has a better performance than adaptive neurofuzzy system, and can be applied to predict both short- and long-term precipitations.
机译:毫无疑问,河流管理的第一步是对相关流域进行降水建模。然而,考虑到该过程的高随机性,仍在开发许多模型以定义水文工程领域中的这种复杂现象。最近,水文学家广泛使用人工神经网络(ANN)作为非线性互引器进行降水建模以及其他水文学领域。在本研究中,将小波分析与人工神经网络相结合,最后与自适应神经模糊系统进行比较,以预测伊朗哈马丹省Nahavand的Verayneh站的降水。为此,使用小波理论的原始时间序列分解为多个子时间序列。然后,将这些子系列用作人工神经网络的输入数据,以预测日降水量,并与自适应神经模糊系统的结果进行比较。结果表明,小波模型和神经网络的结合比自适应神经模糊系统具有更好的性能,可用于预测短期和长期降水。

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