Accumulative Learning using Multiple ANN for Flexible Link Control

This paper presents a scheme of multiple neural networks (MNNs) with a new strategy of combination. This combination can obtain an accumulative learning: the knowledge is increased by gradually adding more neural networks to the system. This scheme is applied to flexible link control via feedback-er...

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Veröffentlicht in:IEEE transactions on aerospace and electronic systems 2010-04, Vol.46 (2), p.508-524
Hauptverfasser: De Almeida Neto, Areolino, Goes, Luis Carlos Sandoval, Nascimento, Cairo Lucio
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Sprache:eng
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Zusammenfassung:This paper presents a scheme of multiple neural networks (MNNs) with a new strategy of combination. This combination can obtain an accumulative learning: the knowledge is increased by gradually adding more neural networks to the system. This scheme is applied to flexible link control via feedback-error-learning (FEL) strategy, here called multi-network-feedback-error-learning. Three different neural control approaches are used to control a flexible link, and it is shown that a better inverse dynamic model of the plant is obtained in this case.
ISSN:0018-9251
1557-9603
DOI:10.1109/TAES.2010.5461638