TranSpeech: Speech-to-Speech Translation With Bilateral Perturbation
Rongjie Huang, Jinglin Liu, Huadai Liu, Yi Ren, Lichao Zhang, Jinzheng He, Zhou Zhao
摘要
Direct speech-to-speech translation (S2ST) with discrete units leverages recent progress in speech representation learning. Specifically, a sequence of discrete representations derived in a self-supervised manner are predicted from the model and passed to a vocoder for speech reconstruction, while still facing the following challenges: 1) Acoustic multimodality: the discrete units derived from speech with same content could be indeterministic due to the acoustic property (e.g., rhythm, pitch, and energy), which causes deterioration of translation accuracy; 2) high latency: current S2ST systems utilize autoregressive models which predict each unit conditioned on the sequence previously generated, failing to take full advantage of parallelism. In this work, we propose TranSpeech, a speech-to-speech translation model with bilateral perturbation. To alleviate the acoustic multimodal problem, we propose bilateral perturbation (BiP), which consists of the style normalization and information enhancement stages, to learn only the linguistic information from speech samples and generate more deterministic representations. With reduced multimodality, we step forward and become the first to establish a non-autoregressive S2ST technique, which repeatedly masks and predicts unit choices and produces high-accuracy results in just a few cycles. Experimental results on three language pairs demonstrate that BiP yields an improvement of 2.9 BLEU on average compared with a baseline textless S2ST model. Moreover, our parallel decoding shows a significant reduction of inference latency, enabling speedup up to 21.4x than autoregressive technique. 1 * Equal Contribution † Corresponding Author 1 Audio samples are available at https://TranSpeech.github.io/ .
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引用它的顶会 Paper15
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- UnitY: Two-pass Direct Speech-to-speech Translation with Discrete UnitsHirofumi Inaguma, Sravya Popuri, Ilia Kulikov, Peng-Jen Chen 等ACL 2023 · 被引用 30 次
- MixSpeech: Cross-Modality Self-Learning with Audio-Visual Stream Mixup for Visual Speech Translation and RecognitionXize Cheng, Tao Jin, Rongjie Huang, Linjun Li 等ICCV 2023 · 被引用 30 次
- TransVIP: Speech to Speech Translation System with Voice and Isochrony PreservationChenyang Le, Yao Qian, Dongmei Wang, Long Zhou 等NeurIPS 2024 · 被引用 25 次
- DASpeech: Directed Acyclic Transformer for Fast and High-quality Speech-to-Speech TranslationQingkai Fang, Yan Zhou, Yang FengNeurIPS 2023 · 被引用 22 次
它引用的顶会 Paper24
- wav2vec 2.0: A Framework for Self-Supervised Learning of Speech RepresentationsAlexei Baevski, Yuhao Zhou, Abdelrahman Mohamed, Michael AuliNeurIPS 2020 · 被引用 9,451 次
- HiFi-GAN: Generative Adversarial Networks for Efficient and High Fidelity Speech SynthesisJungil Kong, Jaehyeon Kim, Jaekyoung BaeNeurIPS 2020 · 被引用 2,890 次
- FastSpeech 2: Fast and High-Quality End-to-End Text to SpeechYi Ren, Chenxu Hu, Xu Tan, Tao Qin 等ICLR 2021 · 被引用 513 次
- Direct Speech-to-Speech Translation With Discrete UnitsAnn Lee, Peng-Jen Chen, Changhan Wang, Jiatao Gu 等ACL 2022 · 被引用 235 次
- Unsupervised Speech Decomposition via Triple Information BottleneckKaizhi Qian, Yang Zhang, Shiyu Chang, Mark Hasegawa-Johnson 等ICML 2020 · 被引用 210 次
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