A Systematic Comparison of English Noun Compound Representations

June 11, 2019 ยท Declared Dead ยท ๐Ÿ› MWE-WN@ACL

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Authors Vered Shwartz arXiv ID 1906.04772 Category cs.CL: Computation & Language Citations 8 Venue MWE-WN@ACL Last Checked 5 months ago
Abstract
Building meaningful representations of noun compounds is not trivial since many of them scarcely appear in the corpus. To that end, composition functions approximate the distributional representation of a noun compound by combining its constituent distributional vectors. In the more general case, phrase embeddings have been trained by minimizing the distance between the vectors representing paraphrases. We compare various types of noun compound representations, including distributional, compositional, and paraphrase-based representations, through a series of tasks and analyses, and with an extensive number of underlying word embeddings. We find that indeed, in most cases, composition functions produce higher quality representations than distributional ones, and they improve with computational power. No single function performs best in all scenarios, suggesting that a joint training objective may produce improved representations.
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