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Automatic recognition of habituals: a three-way classification of clausal aspect

机译:自动识别习惯:从句方面的三种方式分类

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This paper provides the first fully automatic approach for classifying clauses with respect to their aspectual properties as habitual, episodic or static. We bring together two strands of previous work, which address only the related tasks of the episodic-habitual and stative-dynamic distinctions, respectively. Our method combines different sources of information found to be useful for these tasks. We are the first to exhaustively classify all clauses of a text, achieving up to 80% accuracy (baseline 58%) for the three-way classification task, and up to 85% accuracy for related subtasks (baselines 50% and 60%), outperforming previous work. In addition, we provide a new large corpus of Wikipedia texts labeled according to our linguistically motivated guidelines.
机译:本文提供了第一种全自动的方法,用于将子句按其习惯性,情景性或静态性方面进行分类。我们将先前的工作分为两部分,分别仅处理情节-习惯和静态-动态区别的相关任务。我们的方法结合了对这些任务有用的不同信息来源。我们是第一个对文本的所有子句进行彻底分类的公司,三向分类任务的准确率达到80%(基线58%),相关子任务的准确率达到85%(基线50%和60%),胜过以前的工作。此外,我们还提供了一个新的庞大的Wikipedia语料库,这些语料库根据我们的语言动机指南进行了标记。

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