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Compositional-ly Derived Representations of Morphologically Complex Words in Distributional Semantics

机译:分布语义中形态复杂词的成分导出表示

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Speakers of a language can construct an unlimited number of new words through morphological derivation. This is a major cause of data sparseness for corpus-based approaches to lexical semantics, such as distributional semantic models of word meaning. We adapt compositional methods originally developed for phrases to the task of deriving the distributional meaning of morphologically complex words from their parts. Semantic representations constructed in this way beat a strong baseline and can be of higher quality than representations directly constructed from corpus data. Our results constitute a novel evaluation of the proposed composition methods, in which the full additive model achieves the best performance, and demonstrate the usefulness of a compositional morphology component in distributional semantics.
机译:语言的讲者可以通过形态推导来构造无限数量的新单词。这是基于语料库的词法语义方法(例如单词含义的分布语义模型)数据稀疏的主要原因。我们将最初为短语开发的构图方法改编为从其各个部分派生出形态复杂的单词的分布含义的任务。以这种方式构造的语义表示法比基线强,并且比直接从语料库数据构造的表示法具有更高的质量。我们的结果构成了对提出的构图方法的新颖评估,其中完整的加性模型实现了最佳性能,并证明了构形形态成分在分布语义中的有用性。

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