Automatic evaluation of the quality of machine translation of a scientific text: the results of a five-year-long experiment

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Abstract

We report on various approaches to automatic evaluation of machine translation quality and describe three widely used methods. These methods, i.e. methods based on string matching and n-gram models, make it possible to compare the quality of machine translation to reference translation. We employ modern metrics for automatic evaluation of machine translation quality such as BLEU, F-measure, and TER to compare translations made by Google and PROMT neural machine translation systems with translations obtained 5 years ago, when statistical machine translation and rule-based machine translation algorithms were employed by Google and PROMT, respectively, as the main translation algorithms [6]. The evaluation of the translation quality of candidate texts generated by Google and PROMT with reference translation using an automatic translation evaluation program reveal significant qualitative changes as compared with the results obtained 5 years ago, which indicate a dramatic improvement in the work of the above-mentioned online translation systems. Ways to improve the quality of machine translation are discussed. It is shown that modern systems of automatic evaluation of translation quality allow errors made by machine translation systems to be identified and systematized, which will enable the improvement of the quality of translation by these systems in the future.

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Ulitkin, I., Filippova, I., Ivanova, N., & Poroykov, A. (2021). Automatic evaluation of the quality of machine translation of a scientific text: the results of a five-year-long experiment. In E3S Web of Conferences (Vol. 284). EDP Sciences. https://doi.org/10.1051/e3sconf/202128408001

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