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Top-N recommendation through belief propagation

Authors
Ha, JiwoonKwon, Soon-HyoungKim, Sang-WookFaloutsos, ChristosPark, Sunju
Issue Date
Oct-2012
Publisher
Association for Computing Machinary, Inc.
Keywords
belief propagation; data mining; top-n recommendation
Citation
ACM International Conference Proceeding Series, pp.2343 - 2346
Indexed
SCOPUS
Journal Title
ACM International Conference Proceeding Series
Start Page
2343
End Page
2346
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/164503
DOI
10.1145/2396761.2398636
ISSN
0000-0000
Abstract
The top-n recommendation focuses on finding the top-n items that the target user is likely to purchase rather than predicting his/her ratings on individual items. In this paper, we propose a novel method that provides top-n recommendation by probabilistically determining the target user's preference on items. This method models the purchasing relationships between users and items as a bipartite graph and employs Belief Propagation to compute the preference of the target user on items. We analyze the proposed method in detail by examining the changes in recommendation accuracy under different parameter settings. We also show that the proposed method is up to 40% more accurate than an existing method by comparing it with an RWR-based method via extensive experiments.
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