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Author

  • Arzamastsev, Alexander A. (2)
  • Kryuchin, Oleg V. (2)
  • Troitzsch, Klaus G. (2)

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  • parallel algorithms (2) (remove)

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  • Institut für Wirtschafts- und Verwaltungsinformatik (2) (remove)

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A universal simulator based on artificial neural networks for computer clusters (2011)
Kryuchin, Oleg V. ; Arzamastsev, Alexander A. ; Troitzsch, Klaus G.
This paper describes parallel algorithms for training artifcial neural networks. Possible levels of parallelity are presented. Experiments for checking the effciency of algorithms are discussed.
Comparing the efficiency of serial and parallel algorithms for training artificial neural networks using computer clusters (2011)
Kryuchin, Oleg V. ; Arzamastsev, Alexander A. ; Troitzsch, Klaus G.
An estimation of the number of multiplication and addition operations for training artififfcial neural networks by means of consecutive and parallel algorithms on a computer cluster is carried out. The evaluation of the efficiency of these algorithms is developed. The multilayer perceptron, the Volterra network and the cascade-correlation network are used as structures of artififfcial neural networks. Different methods of non-linear programming such as gradient and non-gradient methods are used for the calculation of the weight coefficients.
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