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Constructing Social Networks Based on Near-Duplicate Detection in YouTube Videos

机译:基于YouTube视频中的重复检测构建社交网络

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With the video-sharing websites springing up, more and more people would like to upload and share either their own videos or remix others'. Meanwhile, they could view and comment the videos that they are interested in. Therefore, social networks among videos and users exist implicitly. In this work, we construct two types of social networks, video networks (VN) and topic participant networks (TPN), by utilizing videos, related metadata and near-duplicate detection. In the networks, the nodes denote the videos or users while the weights of the directed edges represent the correlation between the nodes. Then, several indices are defined to quantitatively evaluate the importance of the nodes in the networks. Experiments are conducted by using YouTube videos and corresponding metadata related with a specific event. Experimental results show that the analysis of social networks and indices fits the evolution of the event and the roll topic participants plays in spreading Internet videos very well. Finally, we extensionally investigate to utilize the network for recognizing important videos and participants, summarizing video datasets, and tracking an event with few videos.
机译:随着视频共享网站的兴起,越来越多的人希望上传和共享自己的视频或对其他人的视频进行混音。同时,他们可以查看和评论他们感兴趣的视频。因此,视频和用户之间的社交网络隐含地存在。在这项工作中,我们利用视频,相关元数据和近乎重复的检测,构建了两种类型的社交网络:视频网络(VN)和主题参与者网络(TPN)。在网络中,节点表示视频或用户,而有向边缘的权重表示节点之间的相关性。然后,定义了几个指标以定量评估网络中节点的重要性。通过使用YouTube视频和与特定事件相关的相应元数据进行实验。实验结果表明,对社交网络和指标的分析符合事件的发展,并且滚动主题参与者在传播互联网视频方面发挥了很好的作用。最后,我们进行了广泛的研究,以利用网络来识别重要的视频和参与者,汇总视频数据集并跟踪带有少量视频的事件。

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