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Detecting Subevents using Discourse and Narrative Features

机译:使用话语和叙事功能检测子事件

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Recognizing the internal structure of events is a challenging language processing task of great importance for text understanding. We present a supervised model for automatically identifying when one event is a subevent of another. Building on prior work, we introduce several novel features, in particular discourse and narrative features, that significantly improve upon prior state-of-the-art performance. Error analysis further demonstrates the utility of these features. We evaluate our model on the only two annotated corpora with event hierarchies: HiEve and the Intelligence Community corpus. No prior system has been evaluated on both corpora. Our model outperforms previous systems on both corpora, achieving 0.74 BLANC F_1 on the Intelligence Community corpus and 0.70 F_1 on the HiEve corpus, respectively a 15 and 5 percentage point improvement over previous models.
机译:识别事件的内部结构是一项具有挑战性的语言处理任务,对于理解文本非常重要。我们提出了一种监督模型,用于自动识别一个事件何时是另一个事件的子事件。在以前的工作的基础上,我们介绍了一些新颖的功能,特别是话语和叙事功能,这些功能大大改善了先前的最新性能。错误分析进一步证明了这些功能的实用性。我们在仅有的两个具有事件层次结构的带注释语料库上评估我们的模型:HiEve和Intelligence Community语料库。两个语料库都没有评估先前的系统。我们的模型在两个语料库上都优于以前的系统,在情报社区语料库上达到0.74 BLANC F_1,在HiEve语料库上达到0.70 F_1,分别比以前的模型提高了15和5个百分点。

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