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Spammer detection and tagging based user generated video search system — A survey

机译:基于垃圾邮件发送者检测和标记的用户生成的视频搜索系统—调查

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In this modern world everything is done using online. Most people tend to watch films, sports, songs and also play games in online. One such mostly used site to do all this activity is the You Tube. In such online sites there is a possibility to introduce unwanted information which leads to wastage of user time in searching the content. These unwanted information present in the online sites is referred to us the spammers. In the existing work related to the you Tube the user have to search for the videos which takes a long time and irrelevant videos not related to the user search is displayed. The aim of the proposed work is that, User-generated content (UGC) video systems by definition heavily depend on the input of their community of users and their social interactions for video diffusion and opinion sharing. As a UGC system can achieve a larger audience through improved connectivity, findings motivate to propose a mean to enhance the users' connectivity by taking benefit of friend recommendation and spammer detection of the online videos. The algorithm active lazy fuzzy classifier algorithm used to detect spammers. Two similarity metrics are constructed based on users' interests that are derived from their uploads and favorite tagging of videos. Two friend recommendation algorithms are then proposed. The algorithms use public information provided by users to suggest potential friends with similar interests as measured by the similarity metrics. This paper presents the survey of spammer detection and their technologies and also recommending videos to the user by means of friend function which reduces the time of searching the videos and various methods for rating the videos.
机译:在当今世界,一切都可以通过在线进行。大多数人倾向于看电影,运动,听歌,还可以在线玩游戏。这样的一项经常用于所有活动的网站就是You Tube。在这样的在线站点中,有可能引入不需要的信息,这会浪费用户搜索内容的时间。在线站点中存在的这些不需要的信息称为垃圾邮件发送者。在与您的Tube相关的现有作品中,用户必须搜索花费很长时间的视频,并显示与用户搜索无关的不相关视频。拟议工作的目的在于,根据定义,用户生成的内容(UGC)视频系统在很大程度上取决于其用户社区的输入及其在视频传播和观点共享中的社交互动。由于教资会系统可以通过改善连接性来吸引更多的观众,因此研究结果促使人们提出一种手段,以利用朋友推荐和在线视频垃圾邮件检测者的优势来增强用户的连接性。该算法采用主动惰性模糊分类器算法来检测垃圾邮件发送者。根据用户的兴趣构建两个相似度指标,这些兴趣是从用户的上传和喜欢的视频标记中得出的。然后提出了两种朋友推荐算法。该算法使用用户提供的公共信息来建议具有相似兴趣(通过相似性度量标准衡量)的潜在朋友。本文介绍了垃圾邮件发送者检测及其技术的调查,还通过朋友功能向用户推荐了视频,从而减少了搜索视频的时间以及对视频进行评级的各种方法。

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