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자동차 재구매 증진을 위한 데이터 마이닝 기반의 맞춤형 전략 개발Development of Customized Strategy for Enhancing Automobile Repurchase Using Data Mining Techniques

Other Titles
Development of Customized Strategy for Enhancing Automobile Repurchase Using Data Mining Techniques
Authors
이동욱최근호유동희
Issue Date
2017
Publisher
한국정보시스템학회
Keywords
Automobile repurchase; Data mining; Prediction model; Decision tree; Customized strategy
Citation
정보시스템연구, v.26, no.3, pp 47 - 61
Pages
15
Indexed
KCI
Journal Title
정보시스템연구
Volume
26
Number
3
Start Page
47
End Page
61
URI
https://scholarworks.gnu.ac.kr/handle/sw.gnu/14402
DOI
10.5859/KAIS.2017.26.3.47
ISSN
1229-8476
2733-8770
Abstract
Purpose Although automobile production has increased since the development of the Korean automobile industry, the number of customers who can purchase automobiles decreases relatively. Therefore, automobile companies need to develop strategies to attract customers and promote their repurchase behaviors. To this end, this paper analyzed customer data from a Korean automobile company using data mining techniques to derive repurchase strategies. Design/methodology/approach We conducted under-sampling to balance the collected data and generated 10 datasets. We then implemented prediction models by applying a decision tree, naive Bayesian, and artificial neural network algorithms to each of the datasets. As a result, we derived 10 patterns consisting of 11 variables affecting customers’ decisions about repurchases from the decision tree algorithm, which yielded the best accuracy. Using the derived patterns, we proposed helpful strategies for improving repurchase rates. Findings From the top 10 repurchase patterns, we found that 1) repurchases in January are associated with a specific residential region, 2) repurchases in spring or autumn are associated with whether it is a weekend or not, 3) repurchases in summer are associated with whether the automobile is equipped with a sunroof or not, and 4) a customized promotion for a specific occupation increases the number of repurchases.
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