Machine Translation and Post-Editing: Comparative Evaluation of Different MT Systems and Post-Editor Groups in Specialised Translation

June 22, 2026 ยท Grace Period ยท ๐Ÿ› {ร‰}ditions universitaires de l'UMons, Collection ''Traduction & Technologies''. Teaching Specialized Translation in the Machine Translation Era, pp.51-80, 2025, 978-2-87325-837-5

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Authors Joachim Minder, Alexandra Mestivier, Natalie Kรผbler arXiv ID 2606.23002 Category cs.CL: Computation & Language Citations 0 Venue {ร‰}ditions universitaires de l'UMons, Collection ''Traduction & Technologies''. Teaching Specialized Translation in the Machine Translation Era, pp.51-80, 2025, 978-2-87325-837-5
Abstract
This article aims to evaluate the quality of machine translation (MT) and post-editing (PE) in the context of specialised translation from English into French. Three MT systems (DeepL, eTranslation and Systran) were compared, and two groups of post-editors -linguists/translators and NLP experts -were asked to perform post-editing. Translation assessment is based on error annotation using an error typology adapted to MT and PE evaluation. The results reveal significant differences between the three MT systems and the two groups of post-editors, particularly in terms of terminological accuracy and fluency. This study highlights the importance of domain knowledge in specialised translation, as well as the limitations and variable performance of MT systems in language for specific purposes (LSP).
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