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TitleClustering method using item preference based on RFM for recommendation system in U-commerce
Creator
Date Issued2013
Conference Name7th International Conference on Ubiquitous Information Technologies and Applications, CUTE 2012
Source PublicationLecture Notes in Electrical Engineering
ISBN9789400758568
ISSN1876-1100
Volume214 LNEE
Pages353-362
Conference DateDecember 20-22, 2012
Conference PlaceHong Kong, China
Abstract

This paper proposes a new method using clustering of item preference based on Recency, Frequency, Monetary (RFM) for recommendation system in u-commerce under fixed mobile convergence service environment which is required by real time accessibility and agility. In this paper, using an implicit method without onerous question and answer to the users, not used user's profile for rating to reduce customers' search effort, it is necessary for us to keep the scoring of RFM to be able to reflect the attributes of the item and clustering in order to improve the accuracy of recommendation with high purchasability. To verify improved better performance of proposing system than the previous systems, we carry out the experiments in the same dataset collected in a cosmetic internet shopping mall. © 2013 Springer Science+Business Media.

KeywordClustering Collaborative filtering RFM
DOI10.1007/978-94-007-5857-5_38
URLView source
Language英语English
Scopus ID2-s2.0-84870843964
Citation statistics
Cited Times [WOS]:0   [WOS Record]     [Related Records in WOS]
Document TypeConference paper
Identifierhttp://repository.uic.edu.cn/handle/39GCC9TT/6566
CollectionFaculty of Science and Technology
Affiliation
1.Department of Computer Science,Chungbuk National University,Cheongju,South Korea
2.Department of Computer Science,Namseoul University,Cheonan-city,South Korea
3.Computer Science and Technology,DST,BNU-HKBU United International College,Zhuhai,China
4.Juseong University,Chungbuk,South Korea
Recommended Citation
GB/T 7714
Cho, Young Sung,Moon, Song Chul,Jeong, Seon Philet al. Clustering method using item preference based on RFM for recommendation system in U-commerce[C], 2013: 353-362.
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