A Temporal Context-Aware Model for User Behavior Modeling in Social Media Systems

被引:96
|
作者
Yin, Hongzhi [1 ]
Cui, Bin [1 ]
Chen, Ling [2 ]
Hu, Zhiting [1 ]
Huang, Zi [3 ]
机构
[1] Peking Univ, Key Lab High Confidence Software Technol, MOE, Sch EECS, Beijing, Peoples R China
[2] Univ Technol, QCIS, Sydney, NSW, Australia
[3] Univ Queensland, Sch Informat Technol Elect Engn, Brisbane, Qld, Australia
基金
中国国家自然科学基金; 澳大利亚研究理事会;
关键词
User Behavior Modeling; Temporal Recommender system; Probabilistic generative model; Social Media Mining;
D O I
10.1145/2588555.2593685
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Social media provides valuable resources to analyze user behaviors and capture user preferences. This paper focuses on analyzing user behaviors in social media systems and designing a latent class statistical mixture model, named temporal context-aware mixture model (TCAM), to account for the intentions and preferences behind user behaviors. Based on the observation that the behaviors of a user in social media systems are generally influenced by intrinsic interest as well as the temporal context (e.g., the public's attention at that time), TCAM simultaneously models the topics related to users' intrinsic interests and the topics related to temporal context and then combines the influences from the two factors to model user behaviors in a unified way. To further improve the performance of TCAM, an item-weighting scheme is proposed to enable TCAM to favor items that better represent topics related to user interests and topics related to temporal context, respectively. Based on TCAM, we design an efficient query processing technique to support fast online recommendation for large social media data. Extensive experiments have been conducted to evaluate the performance of TCAM on four real-world datasets crawled from different social media sites. The experimental results demonstrate the superiority of the TCAM models, compared with the state-of-the-art competitor methods, by modeling user behaviors more precisely and making more effective and efficient recommendations.
引用
收藏
页码:1543 / 1554
页数:12
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