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Low-Resource Self-Supervised Learning with SSL-Enhanced TTS
by
Nguyen, Tu Anh
, Dupoux, Emmanuel
, Hung-yi, Lee
, Wei-Ning, Hsu
, Copet, Jade
, Elkahky, Ali
, Abdelrahman, Mohamed
, Adi, Yossi
, Po-chun Hsu
in
Performance degradation
/ Self-supervised learning
/ Speech processing
/ Speech recognition
2024
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Low-Resource Self-Supervised Learning with SSL-Enhanced TTS
by
Nguyen, Tu Anh
, Dupoux, Emmanuel
, Hung-yi, Lee
, Wei-Ning, Hsu
, Copet, Jade
, Elkahky, Ali
, Abdelrahman, Mohamed
, Adi, Yossi
, Po-chun Hsu
in
Performance degradation
/ Self-supervised learning
/ Speech processing
/ Speech recognition
2024
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Do you wish to request the book?
Low-Resource Self-Supervised Learning with SSL-Enhanced TTS
by
Nguyen, Tu Anh
, Dupoux, Emmanuel
, Hung-yi, Lee
, Wei-Ning, Hsu
, Copet, Jade
, Elkahky, Ali
, Abdelrahman, Mohamed
, Adi, Yossi
, Po-chun Hsu
in
Performance degradation
/ Self-supervised learning
/ Speech processing
/ Speech recognition
2024
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Low-Resource Self-Supervised Learning with SSL-Enhanced TTS
Paper
Low-Resource Self-Supervised Learning with SSL-Enhanced TTS
2024
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Overview
Self-supervised learning (SSL) techniques have achieved remarkable results in various speech processing tasks. Nonetheless, a significant challenge remains in reducing the reliance on vast amounts of speech data for pre-training. This paper proposes to address this challenge by leveraging synthetic speech to augment a low-resource pre-training corpus. We construct a high-quality text-to-speech (TTS) system with limited resources using SSL features and generate a large synthetic corpus for pre-training. Experimental results demonstrate that our proposed approach effectively reduces the demand for speech data by 90% with only slight performance degradation. To the best of our knowledge, this is the first work aiming to enhance low-resource self-supervised learning in speech processing.
Publisher
Cornell University Library, arXiv.org
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