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Influence of the learning method in the performance of feedforward neural networks when the activity of neurons is modified
by
Sacha, G M
, Konomi, M
in
Algorithms
/ Artificial neural networks
/ Back propagation
/ Computer simulation
/ Evolutionary algorithms
/ Machine learning
/ Neural networks
/ Neurons
/ Pruning
/ Redundancy
/ Teaching methods
2014
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Influence of the learning method in the performance of feedforward neural networks when the activity of neurons is modified
by
Sacha, G M
, Konomi, M
in
Algorithms
/ Artificial neural networks
/ Back propagation
/ Computer simulation
/ Evolutionary algorithms
/ Machine learning
/ Neural networks
/ Neurons
/ Pruning
/ Redundancy
/ Teaching methods
2014
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Do you wish to request the book?
Influence of the learning method in the performance of feedforward neural networks when the activity of neurons is modified
by
Sacha, G M
, Konomi, M
in
Algorithms
/ Artificial neural networks
/ Back propagation
/ Computer simulation
/ Evolutionary algorithms
/ Machine learning
/ Neural networks
/ Neurons
/ Pruning
/ Redundancy
/ Teaching methods
2014
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Influence of the learning method in the performance of feedforward neural networks when the activity of neurons is modified
Paper
Influence of the learning method in the performance of feedforward neural networks when the activity of neurons is modified
2014
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Overview
A method that allows us to give a different treatment to any neuron inside feedforward neural networks is presented. The algorithm has been implemented with two very different learning methods: a standard Back-propagation (BP) procedure and an evolutionary algorithm. First, we have demonstrated that the EA training method converges faster and gives more accurate results than BP. Then we have made a full analysis of the effects of turning off different combinations of neurons after the training phase. We demonstrate that EA is much more robust than BP for all the cases under study. Even in the case when two hidden neurons are lost, EA training is still able to give good average results. This difference implies that we must be very careful when pruning or redundancy effects are being studied since the network performance when losing neurons strongly depends on the training method. Moreover, the influence of the individual inputs will also depend on the training algorithm. Since EA keeps a good classification performance when units are lost, this method could be a good way to simulate biological learning systems since they must be robust against deficient neuron performance. Although biological systems are much more complex than the simulations shown in this article, we propose that a smart training strategy such as the one shown here could be considered as a first protection against the losing of a certain number of neurons.
Publisher
Cornell University Library, arXiv.org
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