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Effects of the Inclusion of Non-newsworthy Messages in Credibility Assessment

机译:在信誉评估中包含非新闻消息的影响

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Social media has become influential and affects large public perception. Anyone can post and share messages on social networking sites. However, not all posts are trustworthy. Many online messages contain misleading or false information. There has been an extensive research to assess the credibility of social media data. Previous studies evaluate all online messages, which may be inappropriate due to a large amount of such data that can result in ineffectiveness of the system. This paper studies and presents the effects of the inclusion of such data-namely, non-newsworthy messages-in credibility assessment. Our findings affirm a negative effect of training a model with non-newsworthy data. The degree of performance degradation is also shown to have a strong connection to a degree of non-newsworthiness in training data.
机译:社交媒体已具有影响力,并影响了公众的广泛认知。任何人都可以在社交网站上发布和共享消息。但是,并非所有职位都是值得信赖的。许多在线消息包含误导性或虚假信息。已经进行了广泛的研究来评估社交媒体数据的可信度。先前的研究评估了所有在线消息,由于大量此类数据可能导致系统无效,因此这可能是不合适的。本文研究并提出了将此类数据(即非新闻价值的消息)纳入可信度评估的影响。我们的发现肯定了使用非新闻价值的数据训练模型的负面影响。还表明,性能下降的程度与训练数据的非新闻性程度有很强的联系。

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