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Uphill from here: Sentiment patterns in videos from left- and right-wing YouTube news channels

机译:从这里上坡:左右两侧YouTube新闻频道的视频中的情感模式

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News consumption exhibits an increasing shift towards online sources, which bring platforms such as YouTube more into focus. Thus, the distribution of politically loaded news is easier, receives more attention, but also raises the concern of forming isolated ideological communities. Understanding how such news is communicated and received is becoming increasingly important. To expand our understanding in this domain, we apply a linguistic temporal trajectory analysis to analyze sentiment patterns in English-language videos from news channels on YouTube. We examine transcripts from videos distributed through eight channels with pro-left and pro-right political leanings. Using unsupervised clustering, we identify seven different sentiment patterns in the transcripts. We found that the use of two sentiment patterns differed significantly depending on political leaning. Furthermore, we used predictive models to examine how different sentiment patterns relate to video popularity and if they differ depending on the channel's political leaning. No clear relations between sentiment patterns and popularity were found. However, results indicate, that videos from pro-right news channels are more popular and that a negative sentiment further increases that popularity, when sentiments are averaged for each video.
机译:新闻消费显示出越来越多地转向在线资源,这使YouTube等平台更加受关注。因此,政治新闻的分发更容易,受到更多关注,但也引发了形成孤立的意识形态社区的担忧。了解如何传达和接收此类新闻变得越来越重要。为了扩大我们对此领域的了解,我们应用语言时间轨迹分析来分析YouTube新闻频道上英语视频中的情感模式。我们检查通过八个渠道分发的视频的笔录,这些视频具有左派和右派的政治倾向。使用无监督聚类,我们在成绩单中识别出七个不同的情感模式。我们发现,根据政治倾向,两种情感模式的使用差异显着。此外,我们使用了预测模型来检查不同的情感模式与视频受欢迎程度之间的关系,以及它们是否取决于频道的政治倾向而有所不同。情绪模式和受欢迎程度之间没有明确的关系。但是,结果表明,当对每个视频的情感平均时,来自右右新闻频道的视频更受欢迎,而负面情绪则进一步提高了这种受欢迎程度。

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