This paper proposes the architecture of a hybrid Neo-ART/EBP (Adaptive Resonance Theory/Error-Back-Propagation) neural network and describes the results that may be achieved for a specific image vector quantization. Stacking together a simplified input ART layer and an output EBP network allows us to limit the global number of hidden nodes/interconnections and to speed up the convergence time during the training phase. Moreover, in the pattern space, hyperspherical selective attention regions are investigated and the influence of their increasing/decreasing size is discussed.

An adaptive neural network for supervised learning

V Rampa;
1992

Abstract

This paper proposes the architecture of a hybrid Neo-ART/EBP (Adaptive Resonance Theory/Error-Back-Propagation) neural network and describes the results that may be achieved for a specific image vector quantization. Stacking together a simplified input ART layer and an output EBP network allows us to limit the global number of hidden nodes/interconnections and to speed up the convergence time during the training phase. Moreover, in the pattern space, hyperspherical selective attention regions are investigated and the influence of their increasing/decreasing size is discussed.
1992
Istituto di Elettronica e di Ingegneria dell'Informazione e delle Telecomunicazioni - IEIIT
Inglese
E. R. Caianiello
Proceedings of 5th Italian Workshop Neural Nets WIRN Vietri 1992
5th Italian Workshop on Neural Nets WIRN Vietri 1992
173
178
6
981-02-1302-6
https://getinfo.de/app/Fifth-Italian-Workshop-Neural-Nets-WIRN-Vietri/id/TIBKAT%3A131572970
World Scientific
Singapore
SINGAPORE
Sì, ma tipo non specificato
May 1992
Vietri
Adaptive Resonance Theory
Neural Network
Image Vector Quantization
3
none
Brofferio, S; Rampa, V; Tubaro, S
273
info:eu-repo/semantics/conferenceObject
04 Contributo in convegno::04.01 Contributo in Atti di convegno
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/211524
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