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Supervised Machine Learning Techniques to Detect TimeML Events in French and English

机译:监督机器学习技术以法语和英语检测TimeML事件

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Identifying events from texts is an information extraction task necessary for many NLP applications. Through the TimeML specifications and TempEval challenges, it has received some attention in recent years. However, no reference result is available for French. In this paper, we try to fill this gap by proposing several event extraction systems, combining for instance Conditional Random Fields, language modeling and k-nearest-neighbors. These systems are evaluated on French corpora and compared with state-of-the-art methods on English. The very good results obtained on both languages validate our approach.
机译:从文本中识别事件是许多NLP应用程序必需的信息提取任务。通过TimeML规范和TempEval挑战,近年来它受到了一些关注。但是,没有针对法语的参考结果。在本文中,我们尝试通过提出几种事件提取系统(例如条件随机字段,语言建模和k最近邻)相结合来填补这一空白。这些系统在法语语料库上进行了评估,并与英语上的最新方法进行了比较。在两种语言上获得的非常好的结果验证了我们的方法。

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