Towards Speech Emotion Recognition "in the wild" using Aggregated Corpora and Deep Multi-Task Learning
August 13, 2017 ยท Declared Dead ยท ๐ Interspeech
"No code URL or promise found in abstract"
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Authors
Jaebok Kim, Gwenn Englebienne, Khiet P. Truong, Vanessa Evers
arXiv ID
1708.03920
Category
cs.CL: Computation & Language
Citations
91
Venue
Interspeech
Last Checked
3 months ago
Abstract
One of the challenges in Speech Emotion Recognition (SER) "in the wild" is the large mismatch between training and test data (e.g. speakers and tasks). In order to improve the generalisation capabilities of the emotion models, we propose to use Multi-Task Learning (MTL) and use gender and naturalness as auxiliary tasks in deep neural networks. This method was evaluated in within-corpus and various cross-corpus classification experiments that simulate conditions "in the wild". In comparison to Single-Task Learning (STL) based state of the art methods, we found that our MTL method proposed improved performance significantly. Particularly, models using both gender and naturalness achieved more gains than those using either gender or naturalness separately. This benefit was also found in the high-level representations of the feature space, obtained from our method proposed, where discriminative emotional clusters could be observed.
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