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基于二次优化BP神经网络的期货价格预测
引用本文:王海军,白玫,贾兆立,覃丽萍.基于二次优化BP神经网络的期货价格预测[J].数学的实践与认识,2008,38(5):36-41.
作者姓名:王海军  白玫  贾兆立  覃丽萍
作者单位:首都师范大学,信息工程学院,北京,100037
摘    要:针对BP算法存在的不足,结合神经网络、遗传算法和主成分分析的优点,提出基于二次优化BP神经网络的期货价格预测算法.初次优化采用主成分分析法对网络结构进行优化,第二次优化采用自适应遗传算法对网络参数进行优化,将经过二次优化后建立的BP神经网络模型用于期货价格预测.经仿真检验,用新方法建立的模型对期货价格进行预测,在预测的精度和速度方面都优于单纯BP神经网络模型.

关 键 词:期货  主成分分析  遗传算法  神经网络
修稿时间:2007年10月9日

Futures Prices Forecasting Based on BP Neural Networks of Quadratic Optimization
WANG Hai-jun,BAI Mei,JIA Zhao-li,QIN Li-ping.Futures Prices Forecasting Based on BP Neural Networks of Quadratic Optimization[J].Mathematics in Practice and Theory,2008,38(5):36-41.
Authors:WANG Hai-jun  BAI Mei  JIA Zhao-li  QIN Li-ping
Abstract:Future prices were great significance for the futures of dealer,because the model of BP has many problem.This paper gives a new model which based on quadratic optimization BP Neural Network.Quadratic optimization BP Neural Network is combined with neural network,the genetic algorithm and principal component analysis of their respective advantages.First Using Principal Component Analysis to optimize the network structure.Second use genetic algorithm optimize weights and threshold of neural network.After a quadratic optimization then establish the BP neural network models for prediction futures prices.Finally,using futures data validation of the new algorithm in predicting the accuracy and speed of both better than simply BP algorithm.
Keywords:futures  principal component Analysis  genetic algorithm  neural network
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