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Contrasting the Emotions identified in Spanish TV debates and in Human-Machine Interactions

Conférence : Communications avec actes dans un congrès international

This work is aimed to contrast the similarities and differences for the emotions identified in two very different scenarios: human-to-human interaction on Spanish TV debates
and human-machine interaction with a virtual agent in Spanish. To this end we developed a crowd annotation procedure to
label the speech signal in terms of both, emotional categories
and Valence-Arousal-Dominance models. The analysis of these
data showed interesting findings that allowed to profile both the
speakers and the task. Then, Convolutional Neural Networks
were used for the automatic classification of the emotional samples in both tasks. Experimental results drew up a different human behavior in both tasks and outlined different speaker profiles.