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Identifying Explicit Discourse Connectives in Text

机译:识别文本中的显式话语连接词

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Explicit discourse relations in text are signalled by discourse connectives like since, because, however, etc. Identifying discourse connectives is a part of the bigger task called discourse parsing in which discourse coherence relations are extracted from text. In this paper we report improvements to the state-of-the-art for identifying explicit discourse connectives in the Penn Discourse Treebank and the Biomedical Discourse Relation Bank. These improvements have been achieved with maximum entropy (logistic regression) classifiers by combining machine learning features from previous approaches with new surface level features that capture information about a connective's surrounding phrases and new syntactic features that add more information from the path in the syntax tree connecting the root to the connective and from the clause following the connective by means of its syntactic head.
机译:话语中的显式话语关系由话语连接词发出信号,例如,因为等等。识别话语连接词是更大的任务的一部分,称为话语解析,其中从话语中提取话语连贯关系。在本文中,我们报告了对Penn话语树库和生物医学话语关系库中用于识别显式话语连接词的最新技术的改进。这些改进已通过最大熵(逻辑回归)分类器实现,方法是将以前方法中的机器学习功能与新表面层功能(可捕获有关连接词周围短语的信息)和新语法功能(可从语法树连接路径中添加更多信息)相结合连接词的根,并通过其语法首标从连接词后面的子句中提取。

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