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Hybrid Case-based Reasoning and Genetic Algorithms Approach for Customer Classification  

Kim Kyoung-jae (Department of Information Systems, Dongguk University)
Ahn Hyunchul (Graduate School of Management, KAIST)
Abstract
This study proposes hybrid case-based reasoning and genetic algorithms model for customer classification. In this study, vertical and horizontal dimensions of the research data are reduced through integrated feature and instance selection process using genetic algorithms. We applied the proposed model to customer classification model which utilizes customers' demographic characteristics as inputs to predict their buying behavior for the specific product. Experimental results show that the proposed model may improve the classification accuracy and outperform various optimization models of typical CBR system.
Keywords
Case-based reasoning; genetic algorithms; feature selection; instance selection; customer classification.;
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