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Spectral Clustering for German Verbs

机译:德语动词的频谱聚类

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摘要

We describe and evaluate the application of a spectral clustering technique (Ng et al., 2002) to the unsupervised clustering of German verbs. Our previous work has shown that standard clustering techniques succeed in inducing Levin-style semantic classes from verb subcategorisa-tion information. But clustering in the very high dimensional spaces that we use is fraught with technical and conceptual difficulties. Spectral clustering performs a dimensionality reduction on the verb frame patterns, and provides a robustness and efficiency that standard clustering methods do not display in direct use. The clustering results are evaluated according to the alignment (Christianini et al., 2002) between the Gram matrix defined by the cluster output and the corresponding matrix defined by a gold standard.
机译:我们描述和评估了频谱聚类技术(Ng等,2002)在德语动词无监督聚类中的应用。我们以前的工作表明,标准聚类技术成功地从动词子类别信息中引出了Levin风格的语义类。但是,在我们使用的高维空间中进行聚类充满了技术和概念上的困难。频谱聚类对动词框架模式执行降维,并提供了健壮性和效率,标准聚类方法无法直接使用这种聚类方法。根据聚类输出定义的Gram矩阵与金标准定义的相应矩阵之间的对齐方式(Christianini等,2002)评估聚类结果。

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