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Social Photo Tagging Recommendation Using Community-Based Group Associations

机译:使用基于社区的团体协会推荐社会照片

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摘要

In the social network, living photos occupy a large portion of web contents. For sharing a photo with the people appearing in that, users have to manually tag the people with their names, and the social network system links the photo to the people immediately. However, tagging the photos manually is a time-consuming task while people take thousands of photos in their daily life. Therefore, more and more researchers put their eyes on how to recommend tags for a photo. In this paper, our goal is to recommend tags for a query photo with one tagged face. We fuse the results of face recognition and the user¡¦s relationships obtained from social contexts. In addition, the Community-Based Group Associations, called CBGA, is proposed to discover the group associations among users through the community detection. Finally, the experimental evaluations show that the performance of photo tagging recommendation is improved by combining the face recognition and social relationship. Furthermore, the proposed framework achieves the high quality for social photo tagging recommendation.
机译:在社交网络中,实时照片占据了Web内容的很大一部分。为了与其中的人共享照片,用户必须手动用他们的名字标记人,并且社交网络系统立即将照片链接到人。但是,在人们日常生活中拍摄数千张照片时,手动标记照片是一项耗时的工作。因此,越来越多的研究人员开始关注如何为照片推荐标签。在本文中,我们的目标是为带有一张已标记面部的查询照片推荐标签。我们融合了面部识别的结果和从社交环境中获得的用户关系。另外,提出了基于社区的组关联,称为CBGA,以通过社区检测发现用户之间的组关联。最后,实验评估表明,通过结合面部识别和社交关系,可以提高照片标记推荐的性能。此外,所提出的框架为社交照片标签推荐提供了高质量。

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