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TermEval 2020: Shared Task on Automatic Term Extraction Using the Annotated Corpora for Term Extraction Research (ACTER) Dataset

Proceedings of the 6th International Workshop on Computational Terminology

DOI:10.63317/45me5skygtkb

Abstract

The TermEval 2020 shared task provided a platform for researchers to work on automatic term extraction (ATE) with the same dataset: the Annotated Corpora for Term Extraction Research (ACTER). The dataset covers three languages (English, French, and Dutch) and four domains, of which the domain of heart failure was kept as a held-out test set on which final f1-scores were calculated. The aim was to provide a large, transparent, qualitatively annotated, and diverse dataset to the ATE research community, with the goal of promoting comparative research and thus identifying strengths and weaknesses of various state-of-the-art methodologies. The results show a lot of variation between different systems and illustrate how some methodologies reach higher precision or recall, how different systems extract different types of terms, how some are exceptionally good at finding rare terms, or are less impacted by term length. The current contribution offers an overview of the shared task with a comparative evaluation, which complements the individual papers by all participants.

Details

Paper ID
lrec2020-ws-computerm-12
Pages
pp. 85-94
BibKey
rigouts-terryn-etal-2020-termeval
Editor
N/A
Publisher
European Language Resources Association (ELRA)
ISSN
N/A
ISBN
N/A
Workshop
Proceedings of the 6th International Workshop on Computational Terminology
Location
undefined, undefined
Date
11 May 2020 16 May 2020

Authors

  • AR

    Ayla Rigouts Terryn

  • VH

    Veronique Hoste

  • PD

    Patrick Drouin

  • EL

    Els Lefever

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