Legal terminology translation: humans vs algorithms [Articol]

dc.contributor.authorBaghici, Nicoletaro
dc.date.accessioned2026-07-20T07:37:43Z
dc.date.issued2026
dc.description.abstractThe translation of legal terminology represents one of the most challenging areas of specialized translation, requiring not only linguistic competence but also deep understanding of legal systems, cultural nuances, and the intended legal effect of documents. Within the fast advancement of Neural Machine Translation (NMT) and Large Language Models (LLMs), the question arises: can algorithms replace human legal translators? This article examines the complexities of legal language, compares human and machine translation approaches, identifies the strengths and weaknesses of each, and proposes a hybrid model as the most effective solution for legal translation in the contemporary digital landscape. The article argues that while algorithms excel at speed and consistency, only human translators possess the semantic, pragmatic, and juridical competence necessary to ensure absolute precision in legal documents.en
dc.identifier.citationBAGHICI, Nicoleta. Legal terminology translation: humans vs algorithms. In : Dynamics of the Romance and Germanic Languages: Trends and Innovation: hybrid international scientific conference, March 27, 2026, 9th edition : Marking the 80th Anniversary of Moldova State University : Collection of Scientific Articles. Chisinau : Editura USM, 2026. pp. 43-51. ISBN 978-9975-77-545-8 (PDF). Disponibil: https://doi.org/10.59295/drgl2026.05en
dc.identifier.isbn978-9975-62-828-0 (PDF)
dc.identifier.urihttps://doi.org/10.59295/drgl2026.05
dc.identifier.urihttps://msuir.usm.md/handle/123456789/21035
dc.language.isoenen
dc.publisherEditura USM
dc.subjectlegal terminologyen
dc.subjectlegal translationen
dc.subjectmachine translationen
dc.subjectNeural Machine Translationen
dc.subjecthuman translationen
dc.subjectlegal linguisticsen
dc.subjecthybrid intelligenceen
dc.titleLegal terminology translation: humans vs algorithms [Articol]en
dc.typeArticle

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