JOURNAL ARTICLE

Mutual-Learning Improves End-to-End Speech Translation

Jiawei ZhaoWei LuoBoxing ChenAndrew Gilman

Year: 2021 Journal:   Proceedings of the 2021 Conference on Empirical Methods in Natural Language Processing Pages: 3989-3994

Abstract

A currently popular research area in end-to-end speech translation is the use of knowledge distillation from a machine translation (MT) task to improve the speech translation (ST) task. However, such scenario obviously only allows one way transfer, which is limited by the performance of the teacher model. Therefore, We hypothesis that the knowledge distillation-based approaches are sub-optimal. In this paper, we propose an alternative–a trainable mutual-learning scenario, where the MT and the ST models are collaboratively trained and are considered as peers, rather than teacher/student. This allows us to improve the performance of end-to-end ST more effectively than with a teacher-student paradigm. As a side benefit, performance of the MT model also improves. Experimental results show that in our mutual-learning scenario, models can effectively utilise the auxiliary information from peer models and achieve compelling results on Must-C dataset.

Keywords:
Computer science End-to-end principle Task (project management) Machine translation Translation (biology) Artificial intelligence Distillation Speech translation Machine learning Mutual information Natural language processing Speech recognition Engineering

Metrics

1
Cited By
0.12
FWCI (Field Weighted Citation Impact)
21
Refs
0.36
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Natural Language Processing Techniques
Physical Sciences →  Computer Science →  Artificial Intelligence
Topic Modeling
Physical Sciences →  Computer Science →  Artificial Intelligence
Multimodal Machine Learning Applications
Physical Sciences →  Computer Science →  Computer Vision and Pattern Recognition

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