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Provedor de dados:  AgEcon
País:  United States
Título:  PREVISÃO DE PREÇO FUTURO DO BOI GORDO NA BM&F: UMA COMPARAÇÃO ENTRE MODELOS DE SÉRIES TEMPORAIS E REDES NEURAIS
Live cattle prices forecast at BM&F: a comparison between time series models and neural networks
Autores:  Gaio, Luiz Eduardo
Castro Junior, Luiz Gonzaga de
Oliveira, Andre Ribeiro de
Data:  2007-05-01
Ano:  2007
Palavras-chave:  Price forecast
Future market
Neural networks.
Resumo:  Human forecasting capacity is still very limited. In spite of the extreme efforts of specialists in several different areas for years developing scientific knowledge, forecasting various events, such as climatic conditions at a given time, the evolution of a commodity price in the future, remain subject liable to a considerably high degree of error. Therefore, this paper aims to compare forecast price models for the Live Cattle market at Brazilian Mercantile and Future Exchange (BM&F) using models based in Neural Networks and statistical tools of heteroscedastic times series. The data used correspond to the closing of the live cattle prices, in the period ranging from August 1997 to May 2005, totalizing 1946 observations. The results show the supremacy of neural networks models compared with the AR-EGARCH model, once the Mean Squared Error and the Mean Squared Error Root forecasted were smaller for the neural networks.
Tipo:  Journal Article
Idioma:  Inglês
Identificador:  http://purl.umn.edu/43723
Relação:  Organizações Rurais e Agroindustriais/Rural and Agro-Industrial Organizations>Volume 09, Number 2, May/August 2007
Formato:  17
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