Monthly Rainfall Prediction Using Wavelet Neural Network Analysis

被引:0
|
作者
R. Venkata Ramana
B. Krishna
S. R. Kumar
N. G. Pandey
机构
[1] National Institute of Hydrology,Centre for Flood Management Studies
[2] National Institute of Hydrology,Deltaic Regional Center
来源
关键词
Rainfall; Training; Decomposition; Neural network and wavelet;
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学科分类号
摘要
Rainfall is one of the most significant parameters in a hydrological model. Several models have been developed to analyze and predict the rainfall forecast. In recent years, wavelet techniques have been widely applied to various water resources research because of their time-frequency representation. In this paper an attempt has been made to find an alternative method for rainfall prediction by combining the wavelet technique with Artificial Neural Network (ANN). The wavelet and ANN models have been applied to monthly rainfall data of Darjeeling rain gauge station. The calibration and validation performance of the models is evaluated with appropriate statistical methods. The results of monthly rainfall series modeling indicate that the performances of wavelet neural network models are more effective than the ANN models.
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页码:3697 / 3711
页数:14
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