vq-wav2vec: Self-Supervised Learning of Discrete Speech Representations
Alexei Baevski, Steffen Schneider, Michael Auli
Abstract
We propose vq-wav2vec to learn discrete representations of audio segments through a wav2vec-style self-supervised context prediction task. The algorithm uses either a Gumbel-Softmax or online k-means clustering to quantize the dense representations. Discretization enables the direct application of algorithms from the NLP community which require discrete inputs. Experiments show that BERT pre-training achieves a new state of the art on TIMIT phoneme classification and WSJ speech recognition. 1 * Equal contribution. † Work done during a Facebook AI residency.
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Install the CLIlune papers fulltext 1f129fdd-4470-4d8e-af1b-e3e7f53af77bCited by top-tier papers70
- wav2vec 2.0: A Framework for Self-Supervised Learning of Speech RepresentationsAlexei Baevski, Yuhao Zhou, Abdelrahman Mohamed, Michael AuliNeurIPS 2020 · 9,451 citations
- data2vec: A General Framework for Self-supervised Learning in Speech, Vision and LanguageAlexei Baevski, Wei-Ning Hsu, Qiantong Xu, Arun Babu et al.ICML 2022 · 1,123 citations
- Finite Scalar Quantization: VQ-VAE Made SimpleFabian Mentzer, David Minnen, Eirikur Agustsson, Michael TschannenICLR 2024 · 442 citations
- Self-Supervised Learning with Data Augmentations Provably Isolates Content from StyleJulius von Kügelgen, Yash Sharma, Luigi Gresele, Wieland Brendel et al.NeurIPS 2021 · 421 citations
- Unsupervised Speech RecognitionAlexei Baevski, Wei-Ning Hsu, Alexis Conneau, Michael AuliNeurIPS 2021 · 309 citations
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