首页> 外文会议>2019 IEEE Second International Conference on Artificial Intelligence and Knowledge Engineering >Friend or Foe: Studying user Trustworthiness for Friend Recommendation in the Era of Misinformation
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Friend or Foe: Studying user Trustworthiness for Friend Recommendation in the Era of Misinformation

机译:朋友还是敌人:在错误信息时代,研究用户对朋友推荐的信任度

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摘要

The social Web, represented mainly by social media sites, is characterized by enriching the life and activities of its users, thus giving rise to new forms of communication and interaction. The unlimited possibilities offered by social media sites generate new problems related to information overload, the quality of published information and the formation of new social relationships. This opens the possibility to the contamination of social media with unwanted and unreliable content (false news, rumours, spam, hoaxes), which influences the perception and understanding of events, exposing users to risks. Motivated by the large amount of heterogeneous information available on the social Web and considering the consequences of the exposure to unwanted and unreliable content on social media, the existence of accounts dedicated to sharing said content, and the rapid dispersion of both phenomena, the goal of this work is is to define a profile to describe and estimate the trustworthiness or reputation of users, to avoid making "bad" recommendations that could favour the propagation of unreliable content and polluting users. The contribution of this work lies in the provision of reliable recommendation systems based on the integration of techniques that automatically allow the detection of unreliable content and the users publishing it. The final aim is to reduce the negative effects of the existence and propagation of such content, and thus improving the quality of the recommendations.
机译:以社交媒体网站为主要代表的社交网站的特点是丰富了用户的生活和活动,从而产生了新的交流和互动形式。社交媒体站点提供的无限可能性产生了与信息过载,已发布信息的质量以及新的社会关系的形成有关的新问题。这打开了社交媒体被有害和不可靠的内容(虚假新闻,谣言,垃圾邮件,恶作剧)污染的可能性,这会影响事件的感知和理解,使用户面临风险。受社交网络上大量异类信息的影响,并考虑到社交媒体上暴露不想要和不可靠内容的后果,专用于共享所述内容的帐户的存在以及这两种现象的快速分散,这是出于以下目的:这项工作是要定义一个描述文件,以描述和估计用户的可信赖性或声誉,以避免提出可能会助长不可靠内容的传播和污染用户的“不良”建议。这项工作的贡献在于基于可靠的技术集成提供了可靠的推荐系统,这些技术自动允许检测不可靠的内容并由用户发布。最终目标是减少此类内容存在和传播的负面影响,从而提高建议的质量。

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