DocumentCode :
2837602
Title :
Fuzzy combination of Kohonen´s and ART neural network models to detect statistical regularities in a random sequence of multi-valued input patterns
Author :
Baraldi, A. ; Parmiggiani, Flavio
Author_Institution :
IMGA-CNR, Modena, Italy
Volume :
1
fYear :
1997
fDate :
9-12 Jun 1997
Firstpage :
281
Abstract :
A fuzzy simplified ART (SART) implementation is now proposed to combine SART architecture with a Kohonen-based soft learning strategy which employs a fuzzy membership function. Fuzzy SART consists of an attentional and an orienting subsystem. The fuzzy SART attentional subsystem is a self-organizing feedforward flat homogeneous network performing learning by examples. During the processing of a given data set, the fuzzy SART orienting subsystem: 1) adds a new neuron to the attentional subsystem whenever the system fails to recognize an input pattern; and 2) removes a previously allocated neuron from the attentional subsystem if the neuron is no longer able to categorize any input pattern. The performance of fuzzy SART is compared with that of the CGR fuzzy ART model when a 2D data set and the 4D IRIS data set are processed. Unlike the CGR fuzzy ART system, fuzzy SART: 1) requires no input data preprocessing; 2) features stability to small changes in input parameters and in the order of the input sequence; and 3) is competitive when compared to other neural network models found in the literature
Keywords :
ART neural nets; feedforward neural nets; fuzzy neural nets; learning by example; pattern recognition; self-organising feature maps; statistical analysis; Kohonen neural network; feedforward flat homogeneous network; fuzzy membership function; fuzzy simplified ART neural network; learning by examples; multivalued input patterns; pattern recognition; self-organizing feedforward network; soft learning; statistical regularities; Data preprocessing; Fuzzy neural networks; Fuzzy sets; Fuzzy systems; Iris; Neural networks; Neurons; Pattern recognition; Stability; Subspace constraints;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Neural Networks,1997., International Conference on
Conference_Location :
Houston, TX
Print_ISBN :
0-7803-4122-8
Type :
conf
DOI :
10.1109/ICNN.1997.611679
Filename :
611679
Link To Document :
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