Published May 12, 2018 | Version v1
Conference paper Open

Automatic Enrichment of Terminological Resources: the IATE RDF Example

  • 1. Insight Centre for Data Analytics, National University of Ireland Galway
  • 2. Ontology Engineering Group, Universidad Politecnica de Madrid

Description

Terminological resources have proven necessary in many organizations and institutions to ensure communication between experts. However, the maintenance of these resources is a very time-consuming and expensive process. Therefore, the work described in this contribution aims to automate the maintenance process of such resources. As an example, we demonstrate enriching the RDF version of IATE with new terms in the languages for which no translation was available, as well as with domain-disambiguated sentences and information about usage frequency. This is achieved by relying on machine translation trained on parallel corpora that contains the terms in question and multilingual word sense disambiguation performed on the context provided by the sentences. Our results show that for most languages translating the terms within a disambiguated context significantly outperforms the approach with randomly selected sentences.

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