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Information Retrieval and Folksonomies together for Recommender Systems

机译:用于推荐系统的信息检索和伙伴组成物

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The powerful and democratic activity of social tagging allows the wide set of Web users to add free annotations on resources. Tags express user interests, preferences and needs, but also automatically generate folksonomies. They can be considered as gold mine, especially for e-commerce applications, in order to provide effective recommendations. Thus, several recommender systems exploit folksonomies in this context. Folksonomies have also been involved in many information retrieval approaches. In considering that information retrieval and recommender systems are siblings, we notice that few works deal with the integration of their approaches, concepts and techniques to improve recommendation. This paper is a first attempt in this direction. We propose a trail through recommender systems, social Web, e-commerce and social commerce, tags and information retrieval: an overview on the methodologies, and a survey on folksonomy-based information retrieval from recommender systems point of view, delineating a set of open and new perspectives.
机译:社交标记的强大和民主活动允许广泛的网络用户添加有关资源的免费注释。标签表达用户兴趣,首选项和需求,还会自动生成偶然组成。他们可以被视为金矿,特别是对于电子商务应用,以提供有效的建议。因此,若干推荐系统在这种情况下剥削了对人物体。愚蠢的人也参与了许多信息检索方法。在考虑到信息检索和推荐系统是兄弟姐妹时,我们注意到很少有效地处理他们的方法,概念和技术的整合,以改善推荐。本文是沿着这个方向的第一次尝试。我们通过推荐系统,社交网络,电子商务和社会商业,标签和信息检索提出了一条迹:关于方法的概述,以及从推荐系统的角度来看,对基于人物的信息检索的调查,描绘了一套开放和新的观点。

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