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Type-based context-aware service Recommender System for social network

机译:社交网络的基于类型的上下文感知服务推荐系统

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As social network grows fast recently, numerous services are provided based on it. Here it is difficult for the users to choose a right service if a large number of choices exist. Recommender System (RS) is a software tool providing the suggestions of the items most useful to the user. The existing RSs do not properly consider the social relation of the entities in rating the choices. This paper proposes a new context-aware recommendation scheme which reflects the user type in estimating the closeness between the users in social network, together with the cosine similarity measure. Computer simulation shows that the proposed scheme significantly improves the accuracy of rating compared to the existing ones employing the multi-dimensional paradigm and rough set theory. It also displays that the amount of items recommended by the proposed approach is larger than with the existing approaches.
机译:随着最近社交网络的快速发展,基于社交网络提供了许多服务。如果存在大量选择,用户很难选择合适的服务。推荐系统(RS)是一种软件工具,可为用户提供最有用的项目建议。现有的RS在对选择进行评级时没有适当考虑实体的社会关系。本文提出了一种新的上下文感知推荐方案,该方案可反映用户类型,以估计社交网络中用户之间的亲密程度,并采用余弦相似度度量。计算机仿真表明,与采用多维范式和粗糙集理论的现有方案相比,该方案显着提高了评级的准确性。它还显示,与现有方法相比,该方法建议的项目数量更多。

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