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Feature selection enhancement and feature space visualization for speech-based emotion recognition

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submitted on 2024-04-04, 07:29 and posted on 2024-05-05, 09:02 authored by Sofia Kanwal, Sohail Asghar, Hazrat Ali

Robust speech emotion recognition relies on the quality of the speech features. We present speech features enhancement strategy that improves speech emotion recognition. We used the INTERSPEECH 2010 challenge feature-set. We identified subsets from the features set and applied principle component analysis to the subsets. Finally, the features are fused horizontally. The resulting feature set is analyzed using t-distributed neighbour embeddings (t-SNE) before the application of features for emotion recognition. The method is compared with the state-of-the-art methods used in the literature. The empirical evidence is drawn using two well-known datasets: Berlin Emotional Speech Dataset (EMO-DB) and Ryerson Audio-Visual Database of Emotional Speech and Song (RAVDESS) for two languages, German and English, respectively. Our method achieved an average recognition gain of 11.5% for six out of seven emotions for the EMO-DB dataset, and 13.8% for seven out of eight emotions for the RAVDESS dataset as compared to the baseline study.

Other Information

Published in: PeerJ Computer Science
License: https://creativecommons.org/licenses/by/4.0/
See article on publisher's website: https://dx.doi.org/10.7717/peerj-cs.1091

History

Language

  • English

Publisher

PeerJ

Publication Year

  • 2022

License statement

This Item is licensed under the Creative Commons Attribution 4.0 International License.

Institution affiliated with

  • Hamad Bin Khalifa University
  • College of Science and Engineering - HBKU

Related Datasets

Kanwal, Sofia; Asghar, Sohail; Ali, Hazrat (2022). Feature selection enhancement and feature space visualization for speech-based emotion recognition. PeerJ Computer Science. Matlab code for RAVDESS dataset. https://doi.org/10.7717/peerj-cs.1091/supp-1 Kanwal, Sofia; Asghar, Sohail; Ali, Hazrat (2022). Feature selection enhancement and feature space visualization for speech-based emotion recognition. PeerJ Computer Science. Matlab code for EMO-DB dataset. https://doi.org/10.7717/peerj-cs.1091/supp-2