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Provedor de dados:  Rev. Bras. Ciênc. Avic.
País:  Brazil
Título:  Egg hatchability prediction by multiple linear regression and artificial neural networks
Autores:  Bolzan,AC
Machado,RAF
Piaia,JCZ
Data:  2008-06-01
Ano:  2008
Palavras-chave:  Artificial incubation
Artificial neural networks
Hatchability
Multiple linear regression
Resumo:  An artificial neural network (ANN) was compared with a multiple linear regression statistical method to predict hatchability in an artificial incubation process. A feedforward neural network architecture was applied. Network trainings were made by the backpropagation algorithm based on data obtained from industrial incubations. The ANN model was chosen as it produced data that fit better the experimental data as compared to the multiple linear regression model, which used coefficients determined by minimum square method. The proposed simulation results of these approaches indicate that this ANN can be used for incubation performance prediction.
Tipo:  Info:eu-repo/semantics/article
Idioma:  Inglês
Identificador:  http://www.scielo.br/scielo.php?script=sci_arttext&pid=S1516-635X2008000200004
Editor:  Fundação APINCO de Ciência e Tecnologia Avícolas
Relação:  10.1590/S1516-635X2008000200004
Formato:  text/html
Fonte:  Brazilian Journal of Poultry Science v.10 n.2 2008
Direitos:  info:eu-repo/semantics/openAccess
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