Revisiting Modularized Multilingual NMT to Meet Industrial Demands
Sungwon Lyu, Bokyung Son, Kichang Yang, Jaekyoung Bae
摘要
The complete sharing of parameters for multilingual translation (1-1) has been the mainstream approach in current research. However, degraded performance due to the capacity bottleneck and low maintainability hinders its extensive adoption in industries. In this study, we revisit the multilingual neural machine translation model that only share modules among the same languages (M2) as a practical alternative to 1-1 to satisfy industrial requirements. Through comprehensive experiments, we identify the benefits of multi-way training and demonstrate that the M2 can enjoy these benefits without suffering from the capacity bottleneck. Furthermore, the interlingual space of the M2 allows convenient modification of the model. By leveraging trained modules, we find that incrementally added modules exhibit better performance than singly trained models. The zero-shot performance of the added modules is even comparable to supervised models. Our findings suggest that the M2 can be a competent candidate for multilingual translation in industries.
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引用它的顶会 Paper3
- Parameter Differentiation Based Multilingual Neural Machine TranslationQian Wang, Jiajun ZhangAAAI 2022 · 被引用 21 次
- Efficient Inference for Multilingual Neural Machine TranslationAlexandre Berard, Dain Lee, Stéphane Clinchant, Kweon Woo Jung 等EMNLP 2021
- Learning Language Specific Sub-network for Multilingual Machine TranslationZehui Lin, Liwei Wu, Mingxuan Wang, Lei LiACL 2021
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