Please use this identifier to cite or link to this item: http://hdl.handle.net/10609/150327
Title: TermEval 2020: Using TSR filtering method to improve automatic term extraction
Author: Oliver, Antoni  
Vàzquez, Mercè  
Citation: Oliver, A. [Antoni] & Vàzquez, M. [Mercè].(2020). TermEval 2020: Using TSR Filtering Method to Improve Automatic Term Extraction. A B. [Béatrice] Daille & A. [Ayla] Rigouts Terryn & Kyo Kageura (ed.). Proceedings of the 6th International Workshop on Computational Terminology (COMPUTERM 2020) (p. 106-113). Paris: European Language Resources Association (ELRA)
Abstract: The identification of terms from domain-specific corpora using computational methods is a highly time-consuming task because terms have to be validated by specialists. In order to improve term candidate selection, we have developed the Token Slot Recognition (TSR) method, a filtering strategy based on terminological tokens which is used to rank extracted term candidates from domain-specific corpora. We have implemented this filtering strategy in TBXTools. In this paper we present the system we have used in the TermEval 2020 shared task on monolingual term extraction. We also present the evaluation results for the system for English, French and Dutch and for two corpora: corruption and heart failure. For English and French we have used a linguistic methodology based on POS patterns, and for Dutch we have used a statistical methodology based on n-grams calculation and filtering with stop-words. For all languages, TSR (Token Slot Recognition) filtering method has been applied. We have obtained competitive results, but there is still room for improvement of the system.
Keywords: token slot recognition
automatic terminology extraction
TSR
Document type: info:eu-repo/semantics/conferenceObject
Issue Date: 11-May-2020
Publication license: http://creativecommons.org/licenses/by-nc/3.0/es/  
Appears in Collections:Conferencias

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