Weights initialization methods for MLP neural networks
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Škutová, Jolana
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Vysoká škola báňská - Technická univerzita Ostrava
Abstract
This paper describes the weights initialization methods for two-layer feedforward neural
networks. The choice of method influences of a convergence and a minimal final value of cost
function for a neural network training process. The neural networks application in different domain to
be expected, that their users will be acquired the applicable neural network models. Hence it is
important prune away all kinds of an uncertainties while the choice of neural network structure, the
learning algorithm in context of other adjustable parameters as well as preparing of suitable learning
and testing data set for the neural network learning.
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Sborník vědeckých prací Vysoké školy báňské - Technické univerzity Ostrava. Řada strojní. 2008, roč. 54, č. 2, s. 147-152 : il.