Inicio  /  Informatics  /  Vol: 6 Par: 1 (2019)  /  Artículo
ARTÍCULO
TITULO

Improving the Classification Efficiency of an ANN Utilizing a New Training Methodology

Ioannis E. Livieris    

Resumen

In this work, a new approach for training artificial neural networks is presented which utilises techniques for solving the constraint optimisation problem. More specifically, this study converts the training of a neural network into a constraint optimisation problem. Furthermore, we propose a new neural network training algorithm based on the L-BFGS-B method. Our numerical experiments illustrate the classification efficiency of the proposed algorithm and of our proposed methodology, leading to more efficient, stable and robust predictive models.

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