Collaborative filtering with ordinal scale-based implicit ratings for mobile music recommendations

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Collaborative filtering (CF)-based recommender systems represent a promising solution for the rapidly growing mobile music market. However, in the mobile Web environment, a traditional CF system that uses explicit ratings to collect user preferences has a limitation: mobile customers find it difficult to rate their tastes directly because of poor interfaces and high telecommunication costs. Implicit ratings are more desirable for the mobile Web, but commonly used cardinal (interval, ratio) scales for representing preferences are also unsatisfactory because they may increase estimation errors. In this paper, we propose a CF-based recommendation methodology based on both implicit ratings and less ambitious ordinal scales. A mobile Web usage mining (mWUM) technique is suggested as an implicit rating approach, and a specific consensus model typically used in multi-criteria decision-making (MCDM) is employed to generate an ordinal scale-based customer profile. An experiment with the participation of real mobile Web customers shows that the proposed methodology provides better performance than existing CF algorithms in the mobile Web environment. (C) 2010 Elsevier Inc. All rights reserved.
Publisher
ELSEVIER SCIENCE INC
Issue Date
2010-06
Language
English
Article Type
Article
Keywords

PRODUCT RECOMMENDATION; E-COMMERCE; RANKING; SYSTEMS; WEB; PERSONALIZATION; ASSOCIATION; PREFERENCE; RETRIEVAL; ALLEVIATE

Citation

INFORMATION SCIENCES, v.180, no.11, pp.2142 - 2155

ISSN
0020-0255
DOI
10.1016/j.ins.2010.02.004
URI
http://hdl.handle.net/10203/101330
Appears in Collection
MT-Journal Papers(저널논문)
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