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通过物品的显式关系理解推荐系统

Illuminating Recommendation by Understanding the Explicit Item Relations

  • 摘要: 近些年见证了推荐系统在众多应用领域的普及。推荐系统基于多源信息为每个用户生成一个可供选择的推荐物品列表。在很长一段时间里,大多数的研究者追求推荐系统在特定指标上的表现效果,例如,准确性。然而,在现实社会中,用户从大量的商品中选择物品时会主要考虑他们内部的需求和外部的约束。因此,我们认为,在具体的应用领域中显式地建模物品关系对于理解推荐系统而言十分有必要。事实上,在该领域,研究者已经做了一些相关工作,对推荐过程的理解也逐步从隐式转向显式的角度。因此,在这篇文章中,我们从物品显式关系理解的角度整理了推荐系统领域最近的研究进展。我们主要从三个方面来组织相关工作,即:物品组合效应关系,序列依赖关系和外部约束关系。具体来说,组合效应关系和序列依赖关系的相关工作从用户的需求角度建模物品的内部关系,而外部约束关系则强调物品之间的外部要求关系。在此之后,我们也提出了在物品显性关系方面的开放性问题和在推荐系统领域未来的研究建议。

     

    Abstract: Recent years have witnessed the prevalence of recommender systems in various fields, which provide a personalized recommendation list for each user based on various kinds of information. For quite a long time, most researchers have been pursing recommendation performances with predefined metrics, e.g., accuracy. However, in real-world applications, users select items from a huge item list by considering their internal personalized demand and external constraints. Thus, we argue that explicitly modeling the complex relations among items under domain-specific applications is an indispensable part for enhancing the recommendations. Actually, in this area, researchers have done some work to understand the item relations gradually from "implicit" to "explicit" views when recommending. To this end, in this paper, we conduct a survey of these recent advances on recommender systems from the perspective of the explicit item relation understanding. We organize these relevant studies from three types of item relations, i.e., combination-effect relations, sequence-dependence relations, and external-constraint relations. Specifically, the combination-effect relation and the sequence-dependence relation based work models the intra-group intrinsic relations of items from the user demand perspective, and the external-constraint relation emphasizes the external requirements for items. After that, we also propose our opinions on the open issues along the line of understanding item relations and suggest some future research directions in recommendation area.

     

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