Social recommendation algorithm based on stochastic gradient matrix decomposition in social network

被引:1
|
作者
Tian-wu Zhang
Wei-ping Li
Lu Wang
Jie Yang
机构
[1] Henan University of Engineering,School of Computing
[2] Wuhan University of Technology,School of Information Engineering
[3] Shanghai Maritime University,Department of Electrical Automation
[4] Railway Police College,Department of Police Technology
关键词
Matrix decomposition; Recommendation system; Social network; Stochastic gradient;
D O I
暂无
中图分类号
学科分类号
摘要
The revenue of an e-commerce system is affected directly by the prediction accuracy of recommendation system. Although recommendation systems have been comprehensively analyzed in the past decade, the study of social-based recommendation systems just started. In this paper, aiming at providing a general method for improving recommendation systems by incorporating social network information, we propose a social recommendation algorithm based on stochastic gradient matrix decomposition in social network so as to improve the prediction accuracy. This paper considered the social network as auxiliary information, and proposed a matrix factorization based on social recommendation algorithm, which systematically illustrate how to design a matrix factorization objective function with social regularization. It constructed a matrix with the social network and the user scoring matrix, and proposed a stochastic gradient descent algorithm for matrix factorization. The empirical analysis on two large datasets demonstrates our proposed algorithm has lower prediction error, and is obviously better than other state-of-the-art methods.
引用
收藏
页码:601 / 608
页数:7
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