Leveraging Syntactic Constructions for Metaphor Identification

Kevin Stowe, Martha Palmer
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引用次数: 11

Abstract

Identification of metaphoric language in text is critical for generating effective semantic representations for natural language understanding. Computational approaches to metaphor identification have largely relied on heuristic based models or feature-based machine learning, using hand-crafted lexical resources coupled with basic syntactic information. However, recent work has shown the predictive power of syntactic constructions in determining metaphoric source and target domains (Sullivan 2013). Our work intends to explore syntactic constructions and their relation to metaphoric language. We undertake a corpus-based analysis of predicate-argument constructions and their metaphoric properties, and attempt to effectively represent syntactic constructions as features for metaphor processing, both in identifying source and target domains and in distinguishing metaphoric words from non-metaphoric.
利用句法结构进行隐喻识别
文本中隐喻语言的识别是生成有效的语义表征以实现自然语言理解的关键。隐喻识别的计算方法在很大程度上依赖于基于启发式模型或基于特征的机器学习,使用手工制作的词汇资源和基本语法信息。然而,最近的研究表明,句法结构在确定隐喻源域和目标域方面具有预测能力(Sullivan 2013)。我们的工作旨在探讨句法结构及其与隐喻语言的关系。本文基于语料库对谓语-论证结构及其隐喻属性进行了分析,并试图在识别源域和目标域以及区分隐喻词和非隐喻词方面有效地将句法结构作为隐喻处理的特征表示出来。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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