Use of artificial neural networks for prognosis of charcoal prices in Minas Gerais

Author:

Coelho Junior Luiz Moreira1,Rezende José Luiz Pereira de2,Batista André Luiz França3,Mendonça Adriano Ribeiro de4,Lacerda Wilian Soares2

Affiliation:

1. Universidade Federal da Paraíba/UFPB, Brasil

2. Universidade Federal de Lavras/UFLA, Brasil

3. Instituto Federal do Triângulo Mineiro, Brasil

4. Universidade Federal do Espírito Santo, Brasil

Abstract

Energy is an important factor of economic growth and is critical to the stability of a nation. Charcoal is a renewable energy resource and is a fundamental input to the development of the Brazilian forest-based industry. The objective of this study is to provide a prognosis of the charcoal price series for the year 2007 by using Artificial Neural Networks. A feedforward multilayer perceptron ANN was used, the results of which are close to reality. The main findings are that: real prices of charcoal dropped between 1975 and 2000 and rose from the early 21st century; the ANN with two hidden layers was the architecture making the best prediction; the most effective learning rate was 0.99 and 600 cycles, representing the most satisfactory and accurate ANN training. Prediction using ANN was found to be more accurate when compared by the mean squared error to other studies modeling charcoal price series in Minas Gerais state.

Publisher

FapUNIFESP (SciELO)

Subject

Forestry

Reference21 articles.

1. Anuário estatístico,2003

2. Anuário estatístico da ABRAF: ano base 2008,2009

3. Séries históricas,2008

4. Consumer price índex,2008

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