推荐系统中角色感知一致性影响分析

Mengzi Tang, Li Li
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引用次数: 1

摘要

推荐系统在向用户提供个性化信息和帮助解决信息过载问题方面发挥着重要作用。最近的研究考虑了社会理论,研究了社会影响在社会推荐系统中的重要性。然而,许多出版物忽略了用户的角色信息,或者只考虑了一些单一的角色。事实上,用户通常有许多不同的角色。此外,不同类型的用户(不同角色的用户)可能有不同的从众倾向。因此,这启发我们去研究在推荐系统中,从众倾向是如何随着用户角色的变化而变化的。本文首先通过定义效用函数将从众影响形式化,然后提出一个整合用户角色和从众倾向的概率图形模型,称为角色从众推荐系统(RCRS)。我们在几个真实世界的数据集上评估了所提出的模型。实验结果表明,我们的模型明显优于最先进的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Role-aware Conformity Influence Analysis in Recommender Systems
Recommender systems play an important role in providing personalized information to users and helping address the information overload problem. Recent research has considered social theories and studied the importance of social influence in social recommendation systems. However, many publications ignored the users' roles information or just considered some single roles. In fact, users often have many different roles. Besides, different types of users (users with different roles) might have different conformity tendency. Thus, this inspires us to study how conformity tendency changes with users' roles in recommender systems. We firstly formalize conformity influence by defining a utility function and then propose a probabilistic graphical model integrating both users' roles and conformity tendency, named as Role Conformity Recommender Systems (RCRS). We evaluate the proposed model on several real-world datasets. The experimental results show that our model significantly outperforms state-of-the-art approaches.
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