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An Interaction-aware Attention Network for Speech Emotion Recognition in Spoken Dialogs
Conference paper

An Interaction-aware Attention Network for Speech Emotion Recognition in Spoken Dialogs

Sung-Lin Yeh, Yun-Shao Lin and Chi-Chun Lee
ICASSP, IEEE International Conference on Acoustics, Speech and Signal Processing - Proceedings, Vol.2019-May, pp.6685-6689
05/2019

Abstract

attention mechanism interaction speech emotion recognition spoken dialogs Software Signal Processing Electrical and Electronic Engineering
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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