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Aggregating and Analyzing Articles and Comments on a News Website

机译:在新闻网站上汇总和分析文章和评论

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In the top news stories, the commenting activity is rising and falling until it stops. In some ongoing news stories such as disasters like the disappearance of flight MH370, global warming or climate change, political turmoil or economic crisis, this commenting activity cycle can repeat and last many years. To our knowledge, a study and analysis of those data does not exist up to now. There is a need to separate facts, opinions and junk within those comments data. In this paper, we present our framework for supporting readers in analyzing and visualizing facts, opinions and topics in the comments and its extension with comments aggregation and summarization for comments within several news articles for the same event. We added a time-series analysis and comments features such as surprising comments and a preferential threads attachment model.
机译:在顶级新闻报道中,评论活动正在上升并落后,直到它停止。在一些正在进行的新闻故事中,如灾难,如灾难MH370,全球变暖或气候变化,政治动荡或经济危机,这评论活动周期可以重复和持续多年。据我们所知,现在对这些数据的研究和分析并不存在。有必要在这些评论数据中分离事实,意见和垃圾。在本文中,我们介绍了我们支持读者的框架,用于分析和可视化评论中的事实,意见和主题,并在同一事件中的几个新闻文章中的评论中的评论和概述。我们添加了一个时间序列分析和评论功能,例如令人惊讶的评论和优先线程附件模型。

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