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Wav2Vec-Aug: Improved self-supervised training with limited data

2022-06-27 22:31:22
Anuroop Sriram, Michael Auli, Alexei Baevski

Abstract

Self-supervised learning (SSL) of speech representations has received much attention over the last few years but most work has focused on languages and domains with an abundance of unlabeled data. However, for many languages there is a shortage even in the unlabeled data which limits the effectiveness of SSL. In this work, we focus on the problem of applying SSL to domains with limited available data by leveraging data augmentation for Wav2Vec 2.0 pretraining. Further, we propose improvements to each component of the model which result in a combined relative word error rate (WER) improvement of up to 13% compared to Wav2Vec 2.0 on Librispeech test-clean / other.

Abstract (translated)

URL

https://arxiv.org/abs/2206.13654

PDF

https://arxiv.org/pdf/2206.13654.pdf


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