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A Hybrid Neural Network and H-P Filter Model for Short-Term Vegetable Price Forecasting
Author(s) -
Youzhu Li,
Chongguang Li,
Ming-Yang Zheng
Publication year - 2014
Publication title -
mathematical problems in engineering
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.262
H-Index - 62
eISSN - 1026-7077
pISSN - 1024-123X
DOI - 10.1155/2014/135862
Subject(s) - artificial neural network , autoregressive model , filter (signal processing) , nonlinear system , time series , linear model , econometrics , term (time) , series (stratigraphy) , autoregressive integrated moving average , computer science , moving average , artificial intelligence , machine learning , mathematics , statistics , paleontology , physics , quantum mechanics , computer vision , biology
This paper is concerned with time series data for vegetable prices, which have a great impact on human’s life. An accurate forecasting method for prices and an early-warning system in the vegetable market are an urgent need in people’s daily lives. The time series price data contain both linear and nonlinear patterns. Therefore, neither a current linear forecasting nor a neural network can be adequate for modeling and predicting the time series data. The linear forecasting model cannot deal with nonlinear relationships, while the neural network model alone is not able to handle both linear and nonlinear patterns at the same time. The linear Hodrick-Prescott (H-P) filter can extract the trend and cyclical components from time series data. We predict the linear and nonlinear patterns and then combine the two parts linearly to produce a forecast from the original data. This study proposes a structure of a hybrid neural network based on an H-P filter that learns the trend and seasonal patterns separately. The experiment uses vegetable prices data to evaluate the model. Comparisons with the autoregressive integrated moving average method and back propagation artificial neural network methods show that our method has higher accuracy than the others

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