Learning Adaptive Segmentation Policy for Simultaneous Translation
Ruiqing Zhang, Chuanqiang Zhang, Zhongjun He, Hua Wu, Haifeng Wang
Abstract
Balancing accuracy and latency is a great challenge for simultaneous translation. To achieve high accuracy, the model usually needs to wait for more streaming text before translation, which results in increased latency. However, keeping low latency would probably hurt accuracy. Therefore, it is essential to segment the ASR output into appropriate units for translation. Inspired by human interpreters, we propose a novel adaptive segmentation policy for simultaneous translation. The policy learns to segment the source text by considering possible translations produced by the translation model, maintaining consistency between the segmentation and translation. Experimental results on Chinese-English and German-English translation show that our method achieves a better accuracy-latency trade-off over recently proposed state-of-the-art methods.
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Install the CLIlune papers fulltext f0c2f111-bc4d-4240-a9f3-48b987ce4c77Cited by top-tier papers15
- Modeling Dual Read/Write Paths for Simultaneous Machine TranslationShaolei Zhang, Yang FengACL 2022 · 27 citations
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- Reducing Position Bias in Simultaneous Machine Translation with Length-Aware FrameworkShaolei Zhang, Yang FengACL 2022 · 23 citations
- Universal Simultaneous Machine Translation with Mixture-of-Experts Wait-k PolicyShaolei Zhang, Yang FengEMNLP 2021 · 19 citations
- Learning Optimal Policy for Simultaneous Machine Translation via Binary SearchShoutao Guo, Shaolei Zhang, Yang FengACL 2023 · 9 citations
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