项目特征和用户特征对用户感知推荐偶然性的影响

Ningxia Wang, L. Chen, Y. Yang
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引用次数: 8

摘要

面向偶然性的推荐系统通过向用户推荐意想不到的和相关的项目,越来越多地被认为有助于克服面向准确性的推荐的“过滤气泡”问题。然而,现有的大多数系统都是基于研究者对物品特征对serendipity影响的假设,很少从用户的角度研究哪些物品特征甚至用户特征会影响他们感知到的serendipity。在本文中,我们试图根据大规模用户调查(涉及超过10,000名用户)的结果来填补这一空缺。我们分析了不同类型的特征(即数字和分类)与用户感知之间的相关性,并进一步确定了用户特征(如个性特征和好奇心)的交互效应。最后,我们讨论了我们的工作对增强当前面向偶然性的推荐系统的有效性的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Impacts of Item Features and User Characteristics on Users' Perceived Serendipity of Recommendations
Serendipity-oriented recommender systems have increasingly been recognized as useful to overcome the "filter bubble" problem of accuracy-oriented recommenders, by recommending unexpected and relevant items to users. However, most of existing systems are based on researchers' assumptions about the effect of item features on serendipity, but less from users' perspective to study what item features and even user characteristics might affect their perceived serendipity. In this paper, we have attempted to fill in this vacancy based on results of a large-scale user survey (involving over 10,000 users). We have analyzed the correlation between different types of features (i.e., numerical and categorical) with user perceptions, and furthermore identified the interaction effect from user characteristics (such as personality traits and curiosity). We finally discuss the implications of our work to augment the effectiveness of current serendipity-oriented recommender systems.
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