Phrase-Level Metaphor Identification Using Distributed Representations of Word Meaning

Omnia Zayed, John P. McCrae, P. Buitelaar
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引用次数: 10

Abstract

Metaphor is an essential element of human cognition which is often used to express ideas and emotions that might be difficult to express using literal language. Processing metaphoric language is a challenging task for a wide range of applications ranging from text simplification to psychotherapy. Despite the variety of approaches that are trying to process metaphor, there is still a need for better models that mimic the human cognition while exploiting fewer resources. In this paper, we present an approach based on distributional semantics to identify metaphors on the phrase-level. We investigated the use of different word embeddings models to identify verb-noun pairs where the verb is used metaphorically. Several experiments are conducted to show the performance of the proposed approach on benchmark datasets.
基于语义分布表征的短语级隐喻识别
隐喻是人类认知的重要组成部分,经常被用来表达难以用文字语言表达的思想和情感。隐喻语言的处理是一项具有挑战性的任务,其应用范围广泛,从文本简化到心理治疗。尽管有各种各样的方法试图处理隐喻,但仍然需要更好的模型来模仿人类的认知,同时利用更少的资源。本文提出了一种基于分布语义的短语级隐喻识别方法。我们研究了使用不同的词嵌入模型来识别动词隐喻性使用的动词-名词对。通过几个实验证明了该方法在基准数据集上的性能。
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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