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PageRank-based Word Sense Induction within Web Search Results Clustering

机译:Web搜索结果聚类中基于PageRank的词义归纳

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摘要

Word Sense Induction is an open problem in Natural Language Processing. Many recent works have been addressing this problem with a wide spectrum of strategies based on content analysis. In this paper, we present a sense induction strategy exclusively based on link analysis over the Web. In particular, we explore the idea that the main different senses of a given word share similar linking properties and can be found by performing clustering with link-based similarity metrics. The evaluation results show that PageRank-based sense induction achieves interesting results when compared to state-of-the-art content-based algorithms in the context of Web Search Results Clustering.
机译:词义归纳是自然语言处理中的一个开放问题。最近的许多工作都在基于内容分析的广泛策略中解决了这个问题。在本文中,我们仅基于Web链接分析提出一种感应归纳策略。特别是,我们探索了这样一个想法,即给定单词的主要不同含义共享相似的链接属性,并且可以通过使用基于链接的相似性度量进行聚类来发现。评估结果表明,在Web搜索结果聚类的情况下,与基于最新内容的算法相比,基于PageRank的感官归纳获得了有趣的结果。

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