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Erschienen in: World Wide Web 4/2018

12.09.2017

A novel social network hybrid recommender system based on hypergraph topologic structure

verfasst von: Xiaoyao Zheng, Yonglong Luo, Liping Sun, Xintao Ding, Ji Zhang

Erschienen in: World Wide Web | Ausgabe 4/2018

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Abstract

With the advent and popularity of social network, more and more people like to share their experience in social network. However, network information is growing exponentially which leads to information overload. Recommender system is an effective way to solve this problem. The current research on recommender systems is mainly focused on research models and algorithms in social networks, and the social networks structure of recommender systems has not been analyzed thoroughly and the so-called cold start problem has not been resolved effectively. We in this paper propose a novel hybrid recommender system called Hybrid Matrix Factorization(HMF) model which uses hypergraph topology to describe and analyze the interior relation of social network in the system. More factors including contextual information, user feature, item feature and similarity of users ratings are all taken into account based on matrix factorization method. Extensive experimental evaluation on publicly available datasets demonstrate that the proposed hybrid recommender system outperforms the existing recommender systems in tackling cold start problem and dealing with sparse rating datasets. Our system also enjoys improved recommendation accuracy compared with several major existing recommendation approaches.

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Metadaten
Titel
A novel social network hybrid recommender system based on hypergraph topologic structure
verfasst von
Xiaoyao Zheng
Yonglong Luo
Liping Sun
Xintao Ding
Ji Zhang
Publikationsdatum
12.09.2017
Verlag
Springer US
Erschienen in
World Wide Web / Ausgabe 4/2018
Print ISSN: 1386-145X
Elektronische ISSN: 1573-1413
DOI
https://doi.org/10.1007/s11280-017-0494-5

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