Marc A Tessier
2024
Some Tradeoffs in Continual Learning for Parliamentary Neural Machine Translation Systems
Rebecca Knowles
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Samuel Larkin
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Michel Simard
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Marc A Tessier
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Gabriel Bernier-Colborne
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Cyril Goutte
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Chi-kiu Lo
Proceedings of the 16th Conference of the Association for Machine Translation in the Americas (Volume 1: Research Track)
In long-term translation projects, like Parliamentary text, there is a desire to build machine translation systems that can adapt to changes over time. We implement and examine a simple approach to continual learning for neural machine translation, exploring tradeoffs between consistency, the model’s ability to learn from incoming data, and the time a client would need to wait to obtain a newly trained translation system.
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Co-authors
- Rebecca Knowles 1
- Samuel Larkin 1
- Michel Simard 1
- Gabriel Bernier-Colborne 1
- Cyril Goutte 1
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