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      Inferring Concept Hierarchies from Text Corpora via Hyperbolic Embeddings

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          Abstract

          We consider the task of inferring is-a relationships from large text corpora. For this purpose, we propose a new method combining hyperbolic embeddings and Hearst patterns. This approach allows us to set appropriate constraints for inferring concept hierarchies from distributional contexts while also being able to predict missing is-a relationships and to correct wrong extractions. Moreover -- and in contrast with other methods -- the hierarchical nature of hyperbolic space allows us to learn highly efficient representations and to improve the taxonomic consistency of the inferred hierarchies. Experimentally, we show that our approach achieves state-of-the-art performance on several commonly-used benchmarks.

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          The Stanford CoreNLP Natural Language Processing Toolkit

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            DBpedia: A Nucleus for a Web of Open Data

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              CYC: a large-scale investment in knowledge infrastructure

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                Author and article information

                Journal
                03 February 2019
                Article
                1902.00913
                064a929f-3746-48e6-a39b-b1f77703f6e7

                http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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                cs.CL

                Theoretical computer science
                Theoretical computer science

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