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  5. BEAMERS: brain-engaged, active music-based emotion regulation system
 
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BEAMERS: brain-engaged, active music-based emotion regulation system

Source
arXiv
Date Issued
2022-11-01
Author(s)
Li, Jiyang
Wang, Wei
Bhagtani, Kratika
Jin, Yincheng
Jin, Zhanpeng
Abstract
With the increasing demands of emotion comprehension and regulation in our daily life, a customized music-based emotion regulation system is introduced by employing current EEG information and song features, which predicts users' emotion variation in the valence-arousal model before recommending music. The work shows that: (1) a novel music-based emotion regulation system with a commercial EEG device is designed without employing deterministic emotion recognition models for daily usage; (2) the system considers users' variant emotions towards the same song, and by which calculate user's emotion instability and it is in accordance with Big Five Personality Test; (3) the system supports different emotion regulation styles with users' designation of desired emotion variation, and achieves an accuracy of over 0.85 with 2-seconds EEG data; (4) people feel easier to report their emotion variation comparing with absolute emotional states, and would accept a more delicate music recommendation system for emotion regulation according to the questionnaire.
URI
https://arxiv.org/abs/2211.14609
https://d8.irins.org/handle/IITG2025/19977
Subjects
BEAMERS
Valence-arousal model
Big five personality test
Emotion regulation
Emotion variation
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