Contrastive learning of general-purpose audio representations

Aaqib Saeed, David Grangier, Neil Zeghidour

Onderzoeksoutput: Hoofdstuk in Boek/Rapport/CongresprocedureConferentiebijdrageAcademicpeer review

142 Citaten (Scopus)

Samenvatting

We introduce COLA, a self-supervised pre-training approach for learning a general-purpose representation of audio. Our approach is based on contrastive learning: it learns a representation which assigns high similarity to audio segments extracted from the same recording while assigning lower similarity to segments from different recordings. We build on top of recent advances in contrastive learning for computer vision and reinforcement learning to design a lightweight, easy-to-implement self-supervised model of audio. We pre-train embeddings on the large-scale Audioset database and transfer these representations to 9 diverse classification tasks, including speech, music, animal sounds, and acoustic scenes. We show that despite its simplicity, our method significantly outperforms previous self-supervised systems. We furthermore conduct ablation studies to identify key design choices and release a library1 to pre-train and fine-tune COLA models.

Originele taal-2Engels
TitelICASSP 2021 - 2021 IEEE International Conference on Acoustics, Speech and Signal Processing (ICASSP)
UitgeverijInstitute of Electrical and Electronics Engineers
Pagina's3875-3879
Aantal pagina's5
ISBN van elektronische versie978-1-7281-7605-5
DOI's
StatusGepubliceerd - 13 mei 2021
Evenement2021 IEEE International Conference on Acoustics, Speech, and Signal Processing, ICASSP 2021 - Virtual, Virtual, Toronto, Canada
Duur: 6 jun. 202111 jun. 2021
https://2021.ieeeicassp.org/

Congres

Congres2021 IEEE International Conference on Acoustics, Speech, and Signal Processing, ICASSP 2021
Verkorte titelICASSP 2021
Land/RegioCanada
StadVirtual, Toronto
Periode6/06/2111/06/21
Internet adres

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