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http://dx.doi.org/10.5391/IJFIS.2011.11.2.084

Fuzzy Learning Vector Quantization based on Fuzzy k-Nearest Neighbor Prototypes  

Roh, Seok-Beom (Department of Electronic & Control Engineering Wonkwang University)
Jeong, Ji-Won (Department of Electronic & Control Engineering Wonkwang University)
Ahn, Tae-Chon (Research Institute of Engineering Technology Development Wonkwang University)
Publication Information
International Journal of Fuzzy Logic and Intelligent Systems / v.11, no.2, 2011 , pp. 84-88 More about this Journal
Abstract
In this paper, a new competition strategy for learning vector quantization is proposed. The simple competitive strategy used for learning vector quantization moves the winning prototype which is the closest to the newly given data pattern. We propose a new learning strategy based on k-nearest neighbor prototypes as the winning prototypes. The selection of several prototypes as the winning prototypes guarantees that the updating process occurs more frequently. The design is illustrated with the aid of numeric examples that provide a detailed insight into the performance of the proposed learning strategy.
Keywords
learning vector quantization; competition strategy; fuzzy k-nearest neighbor approach; classification;
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