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Detecting Frames in News Headlines and Its Application to Analyzing News Framing Trends Surrounding U.S. Gun Violence

机译:新闻标题中的帧检测及其在分析美国枪支暴力周围新闻框架趋势中的应用

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Different news articles about the same topic often offer a variety of perspectives: an article written about gun violence might emphasize gun control, while another might promote 2nd Amendment rights, and yet a third might focus on mental health issues. In communication research, these different perspectives are known as "frames", which, when used in news media will influence the opinion of their readers in multiple ways. In this paper, we present a method for effectively detecting frames in news headlines. Our training and performance evaluation is based on a new dataset of news headlines related to the issue of gun violence in the United States. This Gun Violence Frame Corpus (GVFC) was curated and annotated by journalism and communication experts. Our proposed approach sets a new state-of-the-art performance for multiclass news frame detection, significantly outperforming a recent baseline by 35.9% absolute difference in accuracy. We apply our frame detection approach in a large scale study of 88k news headlines about the coverage of gun violence in the U.S. between 2016 and 2018.
机译:关于同一主题的不同新闻报道常常提供不同的观点:一篇关于枪支暴力的文章可能强调枪支管制,而另一篇文章可能会促进第二修正案的权利,而第三篇文章可能会关注心理健康问题。在传播研究中,这些不同的观点称为“框架”,当在新闻媒体中使用时,它们将以多种方式影响读者的观点。在本文中,我们提出了一种有效检测新闻头条中的帧的方法。我们的培训和绩效评估基于与美国枪支暴力问题相关的新闻头条的新数据集。该枪支暴力框架语料库(GVFC)是由新闻和传播专家策划和注释的。我们提出的方法为多类新闻帧检测设置了最新的性能,其准确度的绝对差值明显优于最新基准,达到35.9%。我们在2016年至2018年期间对88k个新闻头条的大规模研究中应用了框架检测方法,这些新闻头条涉及美国枪支暴力的报道。

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