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Proceedings Paper

Application of the fuzzy Kohonen clustering network to remote-sensed data processing
Author(s): Palma N. Blonda; A. Bennardo; Guido Pasquariello; Giuseppe Satalino; Vincenza la Forgia
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Paper Abstract

In this work the effectiveness of the fuzzy Kohonen clustering network (FKCN) has been explored in two classification experiments of remote sensed data. The FKCN has been introduced in a multi-modular neural classification system for feature extraction before labeling. The unsupervised module is connected in cascade with the next supervised module, based on the backpropagation learning rule. The performance of the FKCN has been evaluated in comparison with those of a conventional Kohonen self organizing map (SOM) neural network. Experimental results have proved that the fuzzy clustering network can be used for complex data pre-processing.

Paper Details

Date Published: 14 June 1996
PDF: 11 pages
Proc. SPIE 2761, Applications of Fuzzy Logic Technology III, (14 June 1996); doi: 10.1117/12.243245
Show Author Affiliations
Palma N. Blonda, Istituto Elaborazione Segnali ed Immagini/CNR (Italy)
A. Bennardo, Istituto Elaborazione Segnali ed Immagini/CNR (Italy)
Guido Pasquariello, Istituto Elaborazione Segnali ed Immagini/CNR (Italy)
Giuseppe Satalino, Istituto Elaborazione Segnali ed Immagini/CNR (Italy)
Vincenza la Forgia, Istituto Elaborazione Segnali ed Immagini/CNR (Italy)


Published in SPIE Proceedings Vol. 2761:
Applications of Fuzzy Logic Technology III
Bruno Bosacchi; James C. Bezdek, Editor(s)

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