Unsupervised Detection of Metaphorical Adjective-Noun Pairs

Malay Pramanick, Pabitra Mitra
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引用次数: 4

Abstract

Metaphor is a popular figure of speech. Popularity of metaphors calls for their automatic identification and interpretation. Most of the unsupervised methods directed at detection of metaphors use some hand-coded knowledge. We propose an unsupervised framework for metaphor detection that does not require any hand-coded knowledge. We applied clustering on features derived from Adjective-Noun pairs for classifying them into two disjoint classes. We experimented with adjective-noun pairs of a popular dataset annotated for metaphors and obtained an accuracy of 72.87% with k-means clustering algorithm.
隐喻性形容词-名词对的无监督检测
隐喻是一种常用的修辞手法。隐喻的普及要求隐喻的自动识别和解释。大多数针对隐喻检测的无监督方法都使用一些手工编码的知识。我们提出了一个不需要任何手工编码知识的无监督的隐喻检测框架。我们对形容词-名词对衍生的特征进行聚类,将它们分为两个不相关的类。我们对一个标注了隐喻的流行数据集的形容词-名词对进行了实验,使用k-means聚类算法获得了72.87%的准确率。
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