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Describing rumours: a comparative evaluation of two handcrafted representations for rumour detection

机译:描述谣言:对谣言检测的两个手工制作表示的比较评估

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Nowadays, people use more and more social media as a source of information, leading to an increased and uncontrolled spread of misinformation. For this reason, tools to detect unverified and instrumentally relevant news, named as rumours, are necessary. In this work we compare two state-of-the-art handcrafted representations, namely User-Network and Social-Content, designed for developing machine learning-based rumour detection systems, in order to analyse which descriptors best capture the information hidden in unknown rumours. To this end we set up an experimental assessment implementing a Leave-One-Topic-Out evaluation on 8 different topics retrieved from Twitter social microblog. The results obtained for both representations are low as we designed a simple and non optimised pipeline for a fair comparison. Besides this, we were able to find out that the User-Network set of feature results more stable to topic changes. As a further contribution, we introduce two new datasets labelled for rumour detection task on Twitter.
机译:如今,人们使用越来越多的社交媒体作为信息来源,导致误导的增加和不受控制的传播。出于这个原因,需要检测未验证和有关相关新闻的工具,命名为谣言。在这项工作中,我们比较两个最先进的手工制作表示,即用户网络和社交内容,专为开发基于机器学习的谣言检测系统而设计,以分析哪些描述符最佳捕获隐藏在未知谣言中的信息。为此,我们建立了一个实验评估,实施了从Twitter社交微博检索的8个不同主题的休假次级评估。对于这两个表示的结果很低,因为我们设计了一个简单而非优化的流水线,以进行公平比较。除此之外,我们能否发现用户网络集的功能结果会更加稳定,主题更改。作为进一步的贡献,我们在Twitter上介绍了两个标记为谣言检测任务的新数据集。

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