QCRI at SemEval-2023 Task 3: News Genre, Framing and Persuasion Techniques Detection Using Multilingual Models

Maram Hasanain, A. El-Shangiti, R. N. Nandi, Preslav Nakov, Firoj Alam
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引用次数: 6

Abstract

Misinformation spreading in mainstream and social media has been misleading users in different ways. Manual detection and verification efforts by journalists and fact-checkers can no longer cope with the great scale and quick spread of misleading information. This motivated research and industry efforts to develop systems for analyzing and verifying news spreading online. The SemEval-2023 Task 3 is an attempt to address several subtasks under this overarching problem, targeting writing techniques used in news articles to affect readers’ opinions. The task addressed three subtasks with six languages, in addition to three “surprise” test languages, resulting in 27 different test setups. This paper describes our participating system to this task. Our team is one of the 6 teams that successfully submitted runs for all setups. The official results show that our system is ranked among the top 3 systems for 10 out of the 27 setups.
任务3:基于多语言模型的新闻类型、框架和说服技术检测
在主流媒体和社交媒体上传播的错误信息以不同的方式误导了用户。记者和事实核查人员的人工检测和核实工作已无法应对大规模和迅速传播的误导性信息。这促使研究和业界努力开发分析和验证在线传播新闻的系统。SemEval-2023任务3试图解决这个总体问题下的几个子任务,目标是新闻文章中使用的影响读者观点的写作技巧。该任务用六种语言处理了三个子任务,另外还有三种“惊喜”测试语言,产生了27种不同的测试设置。本文描述了我们对该任务的参与系统。我们的团队是成功提交所有设置运行的6个团队之一。官方结果显示,我们的系统在27个设置中有10个排在前3位。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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