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基于自适应小波神经网络的数据挖掘方法研究--对我国石油产量的预测分析
引用本文:刘兰娟,谢美萍.基于自适应小波神经网络的数据挖掘方法研究--对我国石油产量的预测分析[J].财经研究,2006,32(3):114-120.
作者姓名:刘兰娟  谢美萍
作者单位:上海财经大学,经济信息管理与工程学院,上海,200433;上海财经大学,经济信息管理与工程学院,上海,200433
摘    要:小波神经网络是近年来在小波分析研究获得突破性进展基础上提出的一种前馈型网络,文章将小波与神经网络相结合,提出了一种基于自适应小波神经网络(SAWNN,self-adaptation wavelet neural network)的数据挖掘方法,并构造了数据挖掘过程的机器学习机制,以提高对问题的处理能力。文章将所构造的自适应小波神经网络用于石油产量的建模预测研究,实证结果表明此预测模型不仅是有效的,而且是可行的。

关 键 词:石油产量  预测研究  自适应小波神经网络
文章编号:1001-9952(2006)03-0114-07
收稿时间:2005-12-30
修稿时间:2005年12月30

Research of Data Mining Method Based on Self-adaptation Wavelet Neural Network-Prediction Analysis of Petroleum Yield
LIU Lan-juan,XIE Mei-ping.Research of Data Mining Method Based on Self-adaptation Wavelet Neural Network-Prediction Analysis of Petroleum Yield[J].The Study of Finance and Economics,2006,32(3):114-120.
Authors:LIU Lan-juan  XIE Mei-ping
Abstract:Wavelet neural network, which is based on wavelet analysis, is sort of feed forward network developed in recent years. In this paper, combining the theories of wavelet and neural network together, a new method of the self-adaptation wavelet neural network for data mining is proposed and a machine study mechanism is then constructed in order to improve the capability of the former in tackling problems. Later on, the self-adaptation wavelet neural network is used to model and predict the petroleum yield, and the following results successfully prove that such an application is effective and feasible.
Keywords:petroleum yield  prediction study  self-adaptation wavelet neural network
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