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Preposition Sense Disambiguation and Representation

机译:介词意义消亡和表示

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Prepositions are highly polysemous, and their variegated senses encode significant semantic information. In this paper we match each preposition's left- and right context, and their interplay to the geometry of the word vectors to the left and right of the preposition. Extracting these features from a large corpus and using them with machine learning models makes for an efficient preposition sense disambiguation (PSD) algorithm, which is comparable to and better than state-of-the-art on two benchmark datasets. Our reliance on no linguistic tool allows us to scale the PSD algorithm to a large corpus and learn sense-specific preposition representations. The crucial abstraction of preposition senses as word representations permits their use in downstream applications-phrasal verb paraphrasing and preposition selection-with new state-of-the-art results.
机译:介词是高度多色的,并且它们的variegated Senses编码了重要的语义信息。在本文中,我们匹配每个介词的左右上下文,以及它们对介词左侧和右侧的单词向量的几何形状的相互作用。从大型语料库中提取这些功能并使用机器学习模型使用它们使得有效的介词感消歧(PSD)算法,其与两个基准数据集上的最先进的算法相当。我们对无语言工具的依赖允许我们将PSD算法扩展到大型语料库并学习有特定的介词表示。介词感应的关键抽象作为文字表示允许他们在下游应用程序 - 短语动词释义和介词选择 - 具有新的最先进的结果。

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