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An Emotional Respiration Speech Dataset

Published: 07 November 2022 Publication History

Abstract

Natural interaction with human-like embodied agents, such as social robots or virtual agents, relies on the generation of realistic non-verbal behaviours, including body language, gaze and facial expressions. Humans can read and interpret somatic social signals, such as blushing or changes in the respiration rate and depth, as part of such non-verbal behaviours. Studies show that realistic breathing changes in an agent improve the communication of emotional cues, but there are scarcely any databases for affect analysis with breathing ground truth to learn how affect and breathing correlate. Emotional speech databases typically contain utterances coloured by emotional intonation, instead of natural conversation, and lack breathing annotations. In this paper, we introduce the Emotional Speech Respiration Dataset, collected from 20 subjects in a spontaneous speech setting where emotions are elicited via music. Four emotion classes (happy, sad, annoying, calm) are elicited, with 20 minutes of data per participant. The breathing ground truth is collected with piezoelectric respiration sensors, and affective labels are collected via self-reported valence and arousal levels. Along with these, we extract and share visual features of the participants (such as facial keypoints, action units, gaze directions), transcriptions of the speech instances, and paralinguistic features. Our analysis shows that the music induced emotions show significant changes in the levels of valence for all four emotions, compared to the baseline. Furthermore, the breathing patterns change with happy music significantly, but the changes in other elicitors are less prominent. We believe this resource can be used with different embodied agents to signal affect via simulated breathing.

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MP4 File (GENEA workshop 2022 presentation_ An Emotional Respiration Speech Dataset_version2.mp4)
Presentation video

References

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  • (2022)GENEA Workshop 2022: The 3rd Workshop on Generation and Evaluation of Non-verbal Behaviour for Embodied AgentsProceedings of the 2022 International Conference on Multimodal Interaction10.1145/3536221.3564027(799-800)Online publication date: 7-Nov-2022

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cover image ACM Conferences
ICMI '22 Companion: Companion Publication of the 2022 International Conference on Multimodal Interaction
November 2022
225 pages
ISBN:9781450393898
DOI:10.1145/3536220
Permission to make digital or hard copies of all or part of this work for personal or classroom use is granted without fee provided that copies are not made or distributed for profit or commercial advantage and that copies bear this notice and the full citation on the first page. Copyrights for components of this work owned by others than the author(s) must be honored. Abstracting with credit is permitted. To copy otherwise, or republish, to post on servers or to redistribute to lists, requires prior specific permission and/or a fee. Request permissions from [email protected].

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Published: 07 November 2022

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  1. datasets
  2. embodied agents
  3. emotion elicitation
  4. emotions
  5. respiration
  6. social agents

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  • (2022)GENEA Workshop 2022: The 3rd Workshop on Generation and Evaluation of Non-verbal Behaviour for Embodied AgentsProceedings of the 2022 International Conference on Multimodal Interaction10.1145/3536221.3564027(799-800)Online publication date: 7-Nov-2022

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