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Cited 12 time in webofscience Cited 18 time in scopus
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Multi-Sided recommendation based on social tensor factorization

Authors
Hong, MinsungJung, Jason J.
Issue Date
Jun-2018
Publisher
ELSEVIER SCIENCE INC
Keywords
Tensor factorization; Context-based recommendation; Social-based recommendation; Social tensor; Multi-sided recommendation
Citation
INFORMATION SCIENCES, v.447, pp 140 - 156
Pages
17
Journal Title
INFORMATION SCIENCES
Volume
447
Start Page
140
End Page
156
URI
https://scholarworks.bwise.kr/cau/handle/2019.sw.cau/2081
DOI
10.1016/j.ins.2018.03.019
ISSN
0020-0255
1872-6291
Abstract
Tensor factorization has been applied in recommender systems to discover latent factors between multidimensional data such as time, place, and social context. However, tensor based recommender systems still encounter with several problems such as sparsity, cold start, and so on. In this paper, we introduce the new model social tensor to propose a tensor-based recommendation with a social relationship to deal with the existing problems. In addition, an adaptive method is presented to adjust the range of the social network for an active user. To evaluate our method, we conducted several experiments in the movie domain. The results indicate the ability of our method to improve the recommendation performance, even in the case of a new user. Particularly, the proposed method conducts the regeneration and factorization of the tensor in real time. Furthermore, our approach recommends not only a single item, but also the multi-factors for the item such as social, temporal, and spatial contexts. (C) 2018 Elsevier Inc. All rights reserved.
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소프트웨어대학 (소프트웨어학부)
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