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A Study on User Perception of Personality-Based Recommender Systems

机译:基于个性的推荐系统的用户感知研究

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Our previous research indicates that using personality quizzes is a viable and promising way to build user profiles to recommend entertainment products. Based on these findings, our current research further investigates the feasibility of using personality quizzes to build user profiles not only for an active user but also his or her friends. We first propose a general method that infers users' music preferences in terms of their personalities. Our in-depth user studies show that while active users perceive the recommended items to be more accurate for their friends, they enjoy more using personality quiz based recommenders for finding items for themselves. Additionally, we explore if domain knowledge has an influence on users' perception of the system. We found that novice users, who are less knowledgeable about music, generally appreciated more personality-based recommenders. Finally, we propose some design issues for recommender systems using personality quizzes.
机译:我们之前的研究表明,使用个性测验是建立用户个人资料以推荐娱乐产品的可行且有前途的方法。基于这些发现,我们当前的研究进一步调查了使用个性测验为活跃用户以及他或她的朋友建立用户资料的可行性。我们首先提出一种通用方法,可以根据用户的个性推断用户的音乐偏好。我们对用户的深入研究表明,尽管活跃的用户认为推荐的商品对他们的朋友来说更准确,但他们更喜欢使用基于个性测验的推荐人来为自己寻找商品。此外,我们探索领域知识是否会影响用户对系统的感知。我们发现,对音乐知识较少的新手用户通常会偏爱基于个性的推荐者。最后,我们使用个性测验为推荐系统提出一些设计问题。

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