Parallel Distributed Hybrid Fuzzy GBML Models With Rule Set Migration and Training Data Rotation

We propose a parallel distributed model of a hybrid fuzzy genetics-based machine learning (GBML) algorithm to drastically decrease its computation time. Our hybrid algorithm has a Pittsburgh-style GBML framework where a rule set is coded as an individual. A Michigan-style rule-generation mechanism i...

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Bibliographic Details
Published in:IEEE transactions on fuzzy systems Vol. 21; no. 2; pp. 355 - 368
Main Authors: Ishibuchi, H., Mihara, S., Nojima, Y.
Format: Journal Article
Language:English
Published: New York IEEE 01.04.2013
The Institute of Electrical and Electronics Engineers, Inc. (IEEE)
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ISSN:1063-6706, 1941-0034
Online Access:Get full text
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