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Learning to categorize perceptual space of a mobile robot using fuzzy-ART neural network

This paper deals with an application of fuzzy-ART self-organizing neural classifier to adaptive categorization of the perceptual space of a mobile robot. The aim of the research is to develop a learning system for reactive locomotion control in an unknown, cluttered environment. A qualitative descri...

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Main Authors: Dubrawski, A., Reignier, P.
Format: Conference Proceeding
Language:English
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Reignier, P.
description This paper deals with an application of fuzzy-ART self-organizing neural classifier to adaptive categorization of the perceptual space of a mobile robot. The aim of the research is to develop a learning system for reactive locomotion control in an unknown, cluttered environment. A qualitative description of the proposed categorization technique for a trial-and-error learning paradigm is given. Experimental results show that the method of control is efficient, when learning starts from scratch, as well as after some major disturbances of an already experienced system.< >
doi_str_mv 10.1109/IROS.1994.407516
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source IEEE Electronic Library (IEL) Conference Proceedings
subjects Adaptive systems
Control systems
Drives
Laboratories
Learning systems
Mobile robots
Navigation
Neural networks
Robot sensing systems
Space technology
title Learning to categorize perceptual space of a mobile robot using fuzzy-ART neural network
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