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Second Screen User Profiling and Multi-level Smart Recommendations in the Context of Social TVs

机译:社交电视背景下的第二屏用户配置文件和多级智能推荐

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In the context of Social TV, the increasing popularity of first and second screen users, interacting and posting content online, illustrates new business opportunities and related technical challenges, in order to enrich user experience on such environments. SAM (Socializing Around Media) project uses Social Media-connected infrastructure to deal with the aforementioned challenges, providing intelligent user context management models and mechanisms capturing social patterns, to apply collaborative filtering techniques and personalized recommendations towards this direction. This paper presents the Context Management mechanism of SAM, running in a Social TV environment to provide smart recommendations for first and second screen content. Work presented is evaluated using real movie rating dataset found online, to validate the SAM's approach in terms of effectiveness as well as efficiency.
机译:在社交电视的背景下,第一屏幕用户和第二屏幕用户的日益普及,在线交互和发布内容说明了新的商机和相关的技术挑战,以丰富此类环境下的用户体验。 SAM(围绕媒体进行社交化)项目使用连接社交媒体的基础结构来应对上述挑战,提供智能的用户上下文管理模型和捕获社交模式的机制,向此方向应用协作过滤技术和个性化建议。本文介绍了SAM的上下文管理机制,该机制在社交电视环境中运行,可为第一和第二屏幕内容提供明智的建议。使用在线找到的真实电影评级数据集评估呈现的作品,以从有效性和效率上验证SAM的方法。

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