BioNMT: A Biomedical Neural Machine Translation System

Author:

Liu Hongtao,Liang Yanchun,Wang Liupu,Feng Xiaoyue,Guan Renchu

Abstract

To solve the problem of translation of professional vocabulary in the biomedical field and help biological researchers to translate and understand foreign language documents, we proposed a semantic disambiguation model and external dictionaries to build a novel translation model for biomedical texts based on the transformer model. The proposed biomedical neural machine translation system (BioNMT) adopts the sequence-to-sequence translation framework, which is based on deep neural networks. To construct the specialized vocabulary of biology and medicine, a hybrid corpus was obtained using a crawler system extracting from universal corpus and biomedical corpus. The experimental results showed that BioNMT which composed by professional biological dictionary and Transformer model increased the bilingual evaluation understudy (BLEU) value by 14.14%, and the perplexity was reduced by 40%. And compared with Google Translation System and Baidu Translation System, BioNMT achieved better translations about paragraphs and resolve the ambiguity of biomedical name entities to greatly improved.

Publisher

Agora University of Oradea

Subject

Computational Theory and Mathematics,Computer Networks and Communications,Computer Science Applications

Cited by 3 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Transformers and large language models in healthcare: A review;Artificial Intelligence in Medicine;2024-08

2. Adopting machine translation in the healthcare sector: A methodological multi-criteria review;Computer Speech & Language;2024-03

3. Innovations to Machine Translation of Chinese Patent Medicine Instructions;Proceedings of the 2023 7th International Conference on Natural Language Processing and Information Retrieval;2023-12-15

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