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基于递阶遗传算法和BP网络的时间序列预测
引用本文:周辉仁,郑丕谔. 基于递阶遗传算法和BP网络的时间序列预测[J]. 系统仿真学报, 2007, 19(21): 5055-5058
作者姓名:周辉仁  郑丕谔
作者单位:天津大学,系统工程研究所,天津,300072
摘    要:提出一种基于递阶遗传算法和BP神经网络的时间序列预测模型。现有的BP训练方法只能训练BP网络的权重,网络的结构得预先用某种方法确定。利用很好设计的递阶遗传算法能够把网络的结构和权重同时通过训练确定。以铁路客运市场数据进行训练和测试,与传统的BP网络预测模型相比较,结果证明该模型的预测精确度是令人满意的,所提出的方法是可行的。

关 键 词:神经网络  BP神经网络  递阶遗传算法  时间序列预测
文章编号:1004-731X(2007)21-5055-04
收稿时间:2006-08-28
修稿时间:2006-11-09

Time Series Forecasting Based on Hierarchical Genetic Algorithm and BP Neural Network
ZHOU Hui-ren,ZHENG Pi-e. Time Series Forecasting Based on Hierarchical Genetic Algorithm and BP Neural Network[J]. Journal of System Simulation, 2007, 19(21): 5055-5058
Authors:ZHOU Hui-ren  ZHENG Pi-e
Affiliation:Institute of Systems Engineering, Tianjin University, Tianjin 300072, China
Abstract:A time series forecasting model,based on hierarchical genetic algorithm and BP neural network,was proposed.Different from the existing BP training method that can only lead to determination of connection weights,a well-designed hierarchical genetic algorithm was used to train BP neural network with both connection weights and numbers of neurons in a hidden layer determined at the same time.The model was then used to forecast the market of railway passenger traffic.It is shown that the model based on hierarchical genetic algorithm and BP neural network is simple and effective.
Keywords:neural network  BP neural network  hierarchical genetic algorithm  time series forecasting
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