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A hybrid online-product recommendation system: Combining implicit rating-based collaborative filtering and sequential pattern analysis

Authors
Choi, KeunhoYoo, DongheeKim, GunwooSuh, Yongmoo
Issue Date
7월-2012
Publisher
ELSEVIER
Keywords
Collaborative filtering; Sequential pattern analysis; Implicit rating; Recommendation; Hybrid approach
Citation
ELECTRONIC COMMERCE RESEARCH AND APPLICATIONS, v.11, no.4, pp.309 - 317
Indexed
SCIE
SSCI
SCOPUS
Journal Title
ELECTRONIC COMMERCE RESEARCH AND APPLICATIONS
Volume
11
Number
4
Start Page
309
End Page
317
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/108045
DOI
10.1016/j.elerap.2012.02.004
ISSN
1567-4223
Abstract
Many online shopping malls in which explicit rating information is not available still have difficulty in providing recommendation services using collaborative filtering (CF) techniques for their users. Applying temporal purchase patterns derived from sequential pattern analysis (SPA) for recommendation services also often makes users unhappy with the inaccurate and biased results obtained by not considering individual preferences. The objective of this research is twofold. One is to derive implicit ratings so that CF can be applied to online transaction data even when no explicit rating information is available, and the other is to integrate CF and SPA for improving recommendation quality. Based on the results of several experiments that we conducted to compare the performance between ours and others, we contend that implicit rating can successfully replace explicit rating in CF and that the hybrid approach of CF and SPA is better than the individual ones. (C) 2012 Elsevier B. V. All rights reserved.
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Korea University Business School > Department of Business Administration > 1. Journal Articles

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