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Prediction for the Newsroom: Which Articles Will Get the Most Comments?

机译:新闻室预测:哪些文章会得到最大的评论?

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摘要

The overwhelming success of the Web and mobile technologies has enabled millions to share their opinions publicly at any time. But the same success also endangers this freedom of speech due to closing down of participatory sites misused by individuals or interest groups. We propose to support manual moderation by proactively drawing the attention of our moderators to article discussions that most likely need their intervention. To this end, we predict which articles will receive a high number of comments. In contrast to existing work, we enrich the article with metadata, extract semantic and linguistic features, and exploit annotated data from a foreign language corpus. Our logistic regression model improves F1-scores by over 80% in comparison to state-of-the-art approaches.
机译:Web和移动技术的压倒性成功使数百万在任何时候都会分享他们的意见。但同样的成功也危及这种言论自由,因为关闭个人或利益集团滥用的参与式场所。我们建议通过主动吸引我们的主持人注意力讨论,支持手动适度,以便讨论很可能需要他们的干预。为此,我们预测哪些文章将获得大量评论。与现有工作相比,我们通过元数据,提取语义和语言特征来丰富文章,并从外语语料库中利用注释数据。与最先进的方法相比,我们的Logistic回归模型将通过超过80%提高F1分数。

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