混合小波-后置- gp模式在印度阿南德地区降雨预报中的应用

V. Dabhi, S. Chaudhary
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引用次数: 29

摘要

准确的降水预报对国民经济和水资源管理至关重要。降雨在时间和空间上的变异性使降雨预测成为一项具有挑战性的任务。本文研究了小波-后位- gp混合模型在阿南德地区日降水预报中的适用性。采用小波分析作为数据预处理技术,从各气象变量的原始时间序列中去除随机(噪声)成分。然后,利用新生成的气象变量子序列,利用GP变体Postfix-GP和人工神经网络建立降雨模型。然后将开发的模型用于降雨预测。利用统计度量比较了fix- gp和ANN模型的样本外预测性能。结果具有可比性,表明Postfix-GP可以作为降雨预测的替代工具进行探索。
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Hybrid Wavelet-Postfix-GP Model for Rainfall Prediction of Anand Region of India
An accurate prediction of rainfall is crucial for national economy and management of water resources. The variability of rainfall in both time and space makes the rainfall prediction a challenging task. The present work investigates the applicability of a hybrid wavelet-postfix-GP model for daily rainfall prediction of Anand region using meteorological variables. The wavelet analysis is used as a data preprocessing technique to remove the stochastic (noise) component from the original time series of each meteorological variable. The Postfix-GP, a GP variant, and ANN are then employed to develop models for rainfall using newly generated subseries of meteorological variables.The developed models are then used for rainfall prediction.The out-of-sample prediction performance of Postfix-GP and ANN models is compared using statistical measures. The results are comparable and suggest that Postfix-GP could be explored as an alternative tool for rainfall prediction.
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