Revisiting End-to-End Speech-to-Text Translation From Scratch
Biao Zhang, Barry Haddow, Rico Sennrich
Abstract
End-to-end (E2E) speech-to-text translation (ST) often depends on pretraining its encoder and/or decoder using source transcripts via speech recognition or text translation tasks, without which translation performance drops substantially. However, transcripts are not always available, and how significant such pretraining is for E2E ST has rarely been studied in the literature. In this paper, we revisit this question and explore the extent to which the quality of E2E ST trained on speechtranslation pairs alone can be improved. We reexamine several techniques proven beneficial to ST previously, and offer a set of best practices that biases a Transformer-based E2E ST system toward training from scratch. Besides, we propose parameterized distance penalty to facilitate the modeling of locality in the self-attention model for speech. On four benchmarks covering 23 languages, our experiments show that, without using any transcripts or pretraining, the proposed system reaches and even outperforms previous studies adopting pretraining, although the gap remains in (extremely) low-resource settings. Finally, we discuss neural acoustic feature modeling, where a neural model is designed to extract acoustic features from raw speech signals directly, with the goal to simplify inductive biases and add freedom to the model in describing speech. For the first time, we demonstrate its feasibility and show encouraging results on ST tasks. 1
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Install the CLIlune papers fulltext 722ff6c6-da30-4e3d-b11f-a4727af8df1cCited by top-tier papers7
- WACO: Word-Aligned Contrastive Learning for Speech TranslationSiqi Ouyang, Rong Ye, Lei LiACL 2023 · 15 citations
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- End-to-End Single-Channel Speaker-Turn Aware Conversational Speech TranslationJuan Pablo Zuluaga-Gomez, Zhaocheng Huang, Xing Niu, Rohit Paturi et al.EMNLP 2023 · 2 citations
Builds on7
- Bridging the Gap between Pre-Training and Fine-Tuning for End-to-End Speech TranslationChengyi Wang, Yu Wu, Shujie Liu, Zhenglu Yang et al.AAAI 2020 · 90 citations
- Fused Acoustic and Text Encoding for Multimodal Bilingual Pretraining and Speech TranslationRenjie Zheng, Jun-Kun Chen, Mingbo Ma, Liang HuangICML 2021 · 74 citations
- Listen, Understand and Translate: Triple Supervision Decouples End-to-end Speech-to-text TranslationQianqian Dong, Rong Ye, Mingxuan Wang, Hao Zhou et al.AAAI 2021 · 65 citations
- Regularizing End-to-End Speech Translation with Triangular Decomposition AgreementYichao Du, Zhirui Zhang, Weizhi Wang, Boxing Chen et al.AAAI 2022 · 25 citations
- Non-Autoregressive Machine Translation with Latent AlignmentsChitwan Saharia, William Chan, Saurabh Saxena, Mohammad NorouziEMNLP 2020 · 6 citations
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