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Tag Assisted Neural Machine Translation of Film Subtitles

Title
Tag Assisted Neural Machine Translation of Film Subtitles
Authors
AREN, SIEKMEIERWONKEE, LEEKWON, HONGSEOKLEE, JONG HYEOK
Date Issued
2021-08-06
Publisher
Association for Computational Linguistics (ACL)
Abstract
We implemented a neural machine translation system that uses automatic sequence tagging to improve the quality of translation. Instead of operating on unannotated sentence pairs, our system uses pre-trained tagging systems to add linguistic features to source and target sentences. Our proposed neural architecture learns a combined embedding of tokens and tags in the encoder, and simultaneous token and tag prediction in the decoder. Compared to a baseline with unannotated training, this architecture increased the BLEU score of German to English film subtitle translation outputs by 1.61 points using named entity tags; however, the BLEU score decreased by 0.38 points using part-of-speech tags. This demonstrates that certain token-level tag outputs from off-the-shelf tagging systems can improve the output of neural translation systems using our combined embedding and simultaneous decoding extensions.
URI
https://oasis.postech.ac.kr/handle/2014.oak/109972
Article Type
Conference
Citation
The 18th International Conference on Spoken Language Translation (IWCLT 2021), page. 255 - 262, 2021-08-06
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이종혁LEE, JONG HYEOK
Grad. School of AI
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