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Are paralinguistic representations all that is needed for speech emotion recognition?

Orchid Chetia Phukan, Gautam Siddharth Kashyap, Arun Balaji Buduru, Rajesh Sharma

Research output: Chapter in Book/Report/Conference proceedingConference proceeding contributionpeer-review

Abstract

Availability of representations from pre-trained models (PTMs) have facilitated substantial progress in speech emotion recognition (SER). Particularly, representations from PTM trained for paralinguistic speech processing have shown state-of-the-art (SOTA) performance for SER. However, such paralinguistic PTM representations haven't been evaluated for SER in linguistic environments other than English. Also, paralinguistic PTM representations haven't been investigated in benchmarks such as SUPERB, EMO-SUPERB, ML-SUPERB for SER. This makes it difficult to access the efficacy of paralinguistic PTM representations for SER in multiple languages. To fill this gap, we perform a comprehensive comparative study of five SOTA PTM representations. Our results shows that paralinguistic PTM (TRILLsson) representations performs the best and this performance can be attributed to its effectiveness in capturing pitch, tone and other speech characteristics more effectively than other PTM representations.

Original languageEnglish
Title of host publicationInterspeech 2024
Place of PublicationGreece
PublisherInternational Speech Communication Association (ISCA)
Pages4698-4702
Number of pages5
DOIs
Publication statusPublished - 2024
Externally publishedYes
Event25th Interspeech Conferece 2024 - Kos Island, Greece
Duration: 1 Sept 20245 Sept 2024

Publication series

NameInterspeech
PublisherISCA Archive
ISSN (Electronic)2958-1796

Conference

Conference25th Interspeech Conferece 2024
Country/TerritoryGreece
CityKos Island
Period1/09/245/09/24

Keywords

  • Paralinguisitic Speech Processing
  • Pre-Trained Models
  • Speech Emotion Recognition
  • TRILLsson

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