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      Every child should have parents: a taxonomy refinement algorithm based on hyperbolic term embeddings

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          Abstract

          We introduce the use of Poincar\'e embeddings to improve existing state-of-the-art approaches to domain-specific taxonomy induction from text as a signal for both relocating wrong hyponym terms within a (pre-induced) taxonomy as well as for attaching disconnected terms in a taxonomy. This method substantially improves previous state-of-the-art results on the SemEval-2016 Task 13 on taxonomy extraction. We demonstrate the superiority of Poincar\'e embeddings over distributional semantic representations, supporting the hypothesis that they can better capture hierarchical lexical-semantic relationships than embeddings in the Euclidean space.

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          Learning Semantic Hierarchies via Word Embeddings

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            Improving Hypernymy Detection with an Integrated Path-based and Distributional Method

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              SemEval-2015 Task 17: Taxonomy Extraction Evaluation (TExEval)

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                Author and article information

                Journal
                05 June 2019
                Article
                1906.02002
                c8b89e80-ce59-4dd5-b04e-c644e2e6da2e

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

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                Custom metadata
                7 pages (5 + 2 pages references), 2 Figures, 3 Tables, Accepted to the ACL 2019 conference. Will appear in its proceedings
                cs.CL

                Theoretical computer science
                Theoretical computer science

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