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What Can Software Tell Us About Media Coverage and Public Opinion? An Analysis of Political News Posts and Audience Comments on Facebook by Computerised Method

机译:软件如何告诉我们媒体报道和舆论?计算机化方法对Facebook的政治新闻岗位和观众评论分析

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In this exploratory study, we applied an automated linguistic analysis method (TextMind) to a social movement context by comparing a sample set of online news posts (N_1 = 13,434) with audience comments to the posts (N_2 = 1,998,095) on Facebook. The findings of this study revealed that there were, in fact, linguistic differences between the news posts by news media outlets and their corresponding audience comments. TextMind is able to detect such linguistic differences and their changes over time. Comparative findings suggest: (1) The linguistic choices of news reporting are affected by news media's (or journalists') political, ideological, and market orientations. (2) The language used by traditional newspapers is not necessarily more conservative or moderate in emotion than their online competitors. (3) Linguistic choices in news posts would change over periods of time. However, (4) the language patterns of news posts did not directly affect linguistic choices of audiences in opinion expression, which remained relatively consistent.
机译:在这项探索性研究中,我们通过将关于在Facebook上的帖子(N_2 = 1,998,095)的众议会评论中与众多在线新闻帖子(N_1 = 13,434)进行比较,将自动语言分析方法(TextMind)应用于社会运动背景。事实上,新闻媒体网点和他们相应的观众评论,新闻帖子之间的语言差异实际上存在语言差异。 TextMind能够检测到这种语言差异及其随时间的变化。比较结果表明:(1)新闻报道的语言选择受新闻媒体(或记者)政治,思想和市场取向的影响。 (2)传统报纸使用的语言不一定比他们的在线竞争对手更保守或中等。 (3)新闻帖子中的语言选择将在一段时间内改变。然而,(4)新闻帖子的语言模式并没有直接影响意见表达中受众的语言选择,这仍然相对一致。

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