Classifying Japanese Polysemous Verbs based on Fuzzy C-means Clustering

Yoshimi Suzuki, Fumiyo Fukumoto
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引用次数: 6

Abstract

This paper presents a method for classifying Japanese polysemous verbs using an algorithm to identify overlapping nodes with more than one cluster. The algorithm is a graph-based unsupervised clustering algorithm, which combines a generalized modularity function, spectral mapping, and fuzzy clustering technique. The modularity function for measuring cluster structure is calculated based on the frequency distributions over verb frames with selectional preferences. Evaluations are made on two sets of verbs including polysemies.
基于模糊c均值聚类的日语多义动词分类
本文提出了一种日语多义动词分类方法,该方法使用一种算法来识别具有多个聚类的重叠节点。该算法是一种基于图的无监督聚类算法,它结合了广义模块化函数、谱映射和模糊聚类技术。根据具有选择偏好的动词框架的频率分布,计算出用于度量聚类结构的模块化函数。对包含多义词的两组动词进行了评价。
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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