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Recognizing Counterfactual Thinking in Social Media Texts

机译:认识到社交媒体文本的反事实思考

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Counterfactual statements, describing events that did not occur and their consequents, have been studied in areas including problem-solving, affect management, and behavior regulation. People with more counterfactual thinking tend to perceive life events as more personally meaningful. Nevertheless, counterfactuals have not been studied in computational linguistics. We create a counterfactual tweet dataset and explore approaches for detecting counterfactuals using rule-based and supervised statistical approaches. A combined rule-based and statistical approach yielded the best results (F1 = 0.77) outperforming either approach used alone.
机译:在包括问题解决,影响管理和行为监管的区域内研究了反事实陈述,描述了没有发生的事件及其后果。具有更多反事实思考的人倾向于将生命事件感到越来越个人意义。尽管如此,尚未在计算语言学中研究反事实。我们创建了一个反事实的Tweet数据集,并探索使用基于规则和监督统计方法来检测反事实的方法。组合的基于规则和统计方法产生了最佳结果(F1 = 0.77),优于单独使用的任何方法。

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