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Latent Semantic Word Sense Induction and Disambiguation

机译:潜在语义词义的归纳与消歧

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In this paper, we present a unified model for the automatic induction of word senses from text, and the subsequent disambiguation of particular word instances using the automatically extracted sense inventory. The induction step and the disambiguation step are based on the same principle: words and contexts are mapped to a limited number of topical dimensions in a latent semantic word space. The intuition is that a particular sense is associated with a particular topic, so that different senses can be discriminated through their association with particular topical dimensions; in a similar vein, a particular instance of a word can be dis-ambiguated by determining its most important topical dimensions. The model is evaluated on the SEMEVAL-2010 word sense induction and disambiguation task, on which it reaches state-of-the-art results.
机译:在本文中,我们提出了一个统一的模型,用于自动从文本中感应出词义,以及随后使用自动提取的词义清单对特定单词实例进行歧义消除。归纳步骤和消歧步骤基于相同的原理:单词和上下文在潜在的语义单词空间中映射到有限数量的主题维度。直觉是特定的感觉与特定的主题相关联,因此可以通过将它们与特定的主题维度相关联来区分不同的感觉。同样,可以通过确定单词的最重要主题维度来消除单词的特定实例的歧义。该模型在SEMEVAL-2010词义归纳和消歧任务上进行了评估,并在此模型上达到了最新的结果。

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