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AN INTERACTION-AWARE ATTENTION NETWORK FOR SPEECH EMOTION RECOGNITION IN SPOKEN DIALOGS

Citation Author(s):
Sung-Lin Yeh, Yun-Shao Lin, Chi-Chun Lee
Submitted by:
SUNG-LIN YEH
Last updated:
9 May 2019 - 11:36am
Document Type:
Poster
Document Year:
2019
Event:
Presenters:
Sung-Lin Yeh
Paper Code:
2670
 

Obtaining robust speech emotion recognition (SER) in scenarios of spoken interactions is critical to the developments of next generation human-machine interface. Previous research has largely focused on performing SER by modeling each utterance of the dialog in isolation without considering the transactional and dependent nature of the human-human conversation. In this work, we propose an interaction-aware attention network (IAAN) that incorporate contextual information in the learned vocal representation through a novel attention mechanism. Our proposed method achieves 66.3% accuracy (7.9% over baseline methods) in four class emotion recognition and is also the current state-of-art recognition rates obtained on the benchmark database.

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