QASSIT: A Pretopological Framework for the Automatic Construction of Lexical Taxonomies from Raw Texts

Guillaume Cleuziou, Davide Buscaldi, Gaël Dias, Vincent Levorato, Christine Largeron · 2015

This paper presents our participation to the SemEval Task-17, related to "Taxonomy Extraction Evaluation" (Bordea et al., 2015).We propose a new methodology for semisupervised and auto-supervised acquisition of lexical taxonomies from raw texts.Our approach is based on the theory of pretopology which offers a powerful formalism to model subsumption relations and transforms a list of terms into a structured term space by combining different discriminant criteria.In order to reach a good pretopological space, we define the Learning Pretopological Spaces method that learns a parameterized space by using an evolutionary strategy.

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