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Stance detection on social media: State of the art and trends

机译:社交媒体的立场检测:艺术状态和趋势

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Stance detection on social media is an emerging opinion mining paradigm for various social and political applications in which sentiment analysis may be sub-optimal. There has been a growing research interest for developing effective methods for stance detection methods varying among multiple communities including natural language processing, web science, and social computing, where each modeled stance detection in different ways. In this paper, we survey the work on stance detection across those communities and present an exhaustive review of stance detection techniques on social media, including the task definition, different types of targets in stance detection, features set used, and various machine learning approaches applied. Our survey reports state-of-the-art results on the existing benchmark datasets on stance detection, and discusses the most effective approaches. In addition, we explore the emerging trends and different applications of stance detection on social media, including opinion mining and prediction and recently using it for fake news detection. The study concludes by discussing the gaps in the current existing research and highlights the possible future directions for stance detection on social media.
机译:社交媒体的立场检测是一个新兴意见的挖掘范式,用于各种社会和政治应用,其中情绪分析可能是次优。在包括自然语言处理,网络科学和社交计算包括自然语言处理,网络科学和社交计算的多个社区之间,对姿势检测方法的有效方法产生了越来越多的研究兴趣。在本文中,我们调查了这些社区的立场检测的工作,并对社交媒体的姿态检测技术进行了详尽的审查,包括任务定义,姿态检测中的不同类型的目标,所使用的功能集,以及应用的各种机器学习方法。我们的调查报告了现有的基准数据集上的最先进的姿态检测,并讨论了最有效的方法。此外,我们探讨了社交媒体上的姿态检测的新兴趋势和不同应用,包括意见采矿和预测,最近使用它为假新闻检测。该研究通过讨论当前现有研究中的差距来结论,并突出了社交媒体上的姿态检测可能的未来方向。

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