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An accurate COG defuzzifier design using Lamarckian co-adaptation of learning and evolution SCIE SCOPUS

Title
An accurate COG defuzzifier design using Lamarckian co-adaptation of learning and evolution
Authors
Kim, DJChoi, YSLee, SY
Date Issued
2002-09-01
Publisher
ELSEVIER SCIENCE BV
Abstract
This paper proposes a design technique of optimal center of gravity (COG) defuzzifier using the Lamarckian co-adaptation of learning and evolution. The proposed COG defuzzifier is specified by various design parameters such as the centers, widths, and modifiers of MFs. The design parameters are adjusted with the Lamarckian co-adaptation of learning and evolution, where the learning performs a local search of design parameters in an individual COG defuzzifier, but the evolution performs a global search of design parameters among a population of various COG defuzzifiers. This co-adaptation scheme allows to evolve much faster than the non-learning case and gives a higher possibility of finding an optimal solution due to its wider searching capability. An application to the truck backer-upper control problem of the proposed co-adaptive design method of COG defuzzifier is presented. The approximation ability and control performance are compared with those of the conventionally simplified COG defuzzifier in terms of the fuzzy logic controller's approximation error and the average tracing distance, respectively. (C) 2002 Elsevier Science B.V. All rights reserved.
Keywords
fuzzy logic controller; COG defuzzifier; parameter identification; Lamarckian co-adaptation of learning and; evolution; truck backer-upper control; FUZZY-LOGIC CONTROLLER; RULES
URI
https://oasis.postech.ac.kr/handle/2014.oak/18965
DOI
10.1016/S0165-0114(01)00167-1
ISSN
0165-0114
Article Type
Article
Citation
FUZZY SETS AND SYSTEMS, vol. 130, no. 2, page. 207 - 225, 2002-09-01
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김대진KIM, DAI JIN
Dept of Computer Science & Enginrg
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