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Speech Self-Supervised Representation Benchmarking: Are We Doing it Right?

  • Salah Zaiem
  • , Youcef Kemiche
  • , Titouan Parcollet
  • , Slim Essid
  • , Mirco Ravanelli
  • Institut Polytechnique de Paris
  • Hi! PARIS Engineering Team
  • Capgemini Engineering
  • Samsung AI Center - Cambridge
  • University of Cambridge
  • Université de Montréal

Résultats de recherche: Contribution à un journalArticle de conférenceRevue par des pairs

26 Citations (Scopus)

Résumé

Self-supervised learning (SSL) has recently allowed leveraging large datasets of unlabeled speech signals to reach impressive performance on speech tasks using only small amounts of annotated data. The high number of proposed approaches fostered the need and rise of extended benchmarks that evaluate their performance on a set of downstream tasks exploring various aspects of the speech signal. However, and while the number of considered tasks has been growing, most rely upon a single decoding architecture that maps the frozen SSL representations to the downstream labels. This work investigates the robustness of such benchmarking results to changes in the decoder architecture. Interestingly, it appears that varying the architecture of the downstream decoder leads to significant variations in the leaderboards of most tasks. Concerningly, our study reveals that benchmarking using limited decoders may cause a counterproductive increase in the sizes of the developed SSL models.

langue originaleAnglais
Pages (de - à)2873-2877
Nombre de pages5
journalProceedings of the Annual Conference of the International Speech Communication Association, INTERSPEECH
Volume2023-August
Les DOIs
étatPublié - 1 janv. 2023
Evénement24th Annual conference of the International Speech Communication Association, Interspeech 2023 - Dublin, Irlande
Durée: 20 août 202324 août 2023

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