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有附件Toward the next generation of recommender systems: a survey of the state-of-the-art and possible extensions

文献技术官 添加于 2011-6-5 20:31 | 3381 次阅读 | 0 个评论
  •  作 者

    Adomavicius G, Tuzhilin A
  •  摘 要

    This paper presents an overview of the field of recommender systems and describes the current generation of recommendation methods that are usually classified into the following three main categories: content-based, collaborative, and hybrid recommendation approaches. This paper also describes various limitations of current recommendation methods and discusses possible extensions that can improve recommendation capabilities and make recommender systems applicable to an even broader range of applications. These extensions include, among others, an improvement of understanding of users and items, incorporation of the contextual information into the recommendation process, support for multcriteria ratings, and a provision of more flexible and less intrusive types of recommendations
  •  详细资料

    • 文献种类:期刊
    • 期刊名称: IEEE Transactions on Knowledge and Data Engineering
    • 期刊缩写: IEEE Trans. Knowl. Data Eng.
    • 期卷页: 2005  17 6 734-749
    • ISBN: 1041-4347
  • 相关链接 DOI URL 

  •  附 件

    PDF附件Toward the next generation of recommender systems: a survey of the state-of-the-art and possible extensions 
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