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Neural networks for predicting breeding values and genetic gains
Silva, Gabi Nunes; Tomaz, Rafael Simões; Sant'Anna, Isabela de Castro; Nascimento, Moysés; Bhering, Leonardo Lopes; Cruz, Cosme Damião.
Afiliação
  • Silva, Gabi Nunes; Federal University of Viçosa. Dept of Applied Statistics and Biometrics. Viçosa. BR
  • Tomaz, Rafael Simões; Federal University of Viçosa. Dept of General Biology. Viçosa. BR
  • Sant'Anna, Isabela de Castro; Federal University of Viçosa. Dept of General Biology. Viçosa. BR
  • Nascimento, Moysés; Federal University of Viçosa. Dept of General Biology. Viçosa. BR
  • Bhering, Leonardo Lopes; Federal University of Viçosa. Dept of General Biology. Viçosa. BR
  • Cruz, Cosme Damião; Federal University of Viçosa. Dept of Applied Statistics and Biometrics. Viçosa. BR
Sci. agric ; 71(6): 494-498, nov-Dez. 2014. ilus, tab
Article em En | VETINDEX | ID: biblio-1497449
Biblioteca responsável: BR68.1
Localização: BR68.1
ABSTRACT
Analysis using Artificial Neural Networks has been described as an approach in the decision-making process that, although incipient, has been reported as presenting high potential for use in animal and plant breeding. In this study, we introduce the procedure of using the expanded data set for training the network. Wealso proposed using statistical parameters to estimate the breeding value of genotypes in simulated scenarios, in addition to the mean phenotypic value in a feed-forward back propagation multilayer perceptron network. After evaluating artificial neural network configurations, our results showed its superiority to estimates based on linear models, as well as its applicability in the genetic value prediction process. The results further indicated the good generalization performance of the neural network model in several additional validation experiments.
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