TY - GEN
T1 - Closed-Loop Rhythmic Haptic Biofeedback via Smartwatch for Relaxation and Sleep Onset
AU - Lee, Jueun
AU - Moschina, Dennis
AU - Ramesh, Supraja
AU - Röddiger, Tobias
AU - Kunze, Kai
AU - Beigl, Michael
N1 - Publisher Copyright:
© 2025 Association for Computing Machinery. All rights reserved.
PY - 2025/10/7
Y1 - 2025/10/7
N2 - We investigate the use of musically structured, closed-loop vibration patterns as a passive biofeedback intervention for relaxation and sleep initiation. By encoding rhythmic meter structures into smartwatch vibrations and adapting their frequency to be slightly slower than the user's real-time heart rate, our system aims to reduce arousal through tactile entrainment, offering a non-invasive alternative to auditory or open-loop approaches previously used in sleep and anxiety contexts. In the first study (N=20), we compared five adaptive vibration rhythms for their effects on heart rate and subjective perceptions of relaxation in a resting context. In the second study (N=28), we evaluated the most promising pattern from Study 1 in a prolonged sleep initiation setting. Results showed increased parasympathetic activity and perceived relaxation during short-term stimulation, but no significant effects on sleep-related measures during the sleep onset phase. This work contributes to the understanding of how wearable haptic feedback can support relaxation and sleep, offering design insights and identifying methodological considerations for effectively integrating haptic interaction into self-directed interventions.
AB - We investigate the use of musically structured, closed-loop vibration patterns as a passive biofeedback intervention for relaxation and sleep initiation. By encoding rhythmic meter structures into smartwatch vibrations and adapting their frequency to be slightly slower than the user's real-time heart rate, our system aims to reduce arousal through tactile entrainment, offering a non-invasive alternative to auditory or open-loop approaches previously used in sleep and anxiety contexts. In the first study (N=20), we compared five adaptive vibration rhythms for their effects on heart rate and subjective perceptions of relaxation in a resting context. In the second study (N=28), we evaluated the most promising pattern from Study 1 in a prolonged sleep initiation setting. Results showed increased parasympathetic activity and perceived relaxation during short-term stimulation, but no significant effects on sleep-related measures during the sleep onset phase. This work contributes to the understanding of how wearable haptic feedback can support relaxation and sleep, offering design insights and identifying methodological considerations for effectively integrating haptic interaction into self-directed interventions.
KW - affective computing
KW - haptic biofeedback
KW - relaxation interventions
KW - rhythmic vibration
KW - sleep initiation support
KW - smartwatch applications
KW - wearable haptics
UR - https://www.scopus.com/pages/publications/105021322980
UR - https://www.scopus.com/pages/publications/105021322980#tab=citedBy
U2 - 10.1145/3715071.3750412
DO - 10.1145/3715071.3750412
M3 - Conference contribution
AN - SCOPUS:105021322980
T3 - Proceedings - International Symposium on Wearable Computers, ISWC
SP - 30
EP - 37
BT - ISWC 2025 - Proceedings of the 2025 ACM International Symposium on Wearable Computers
PB - Association for Computing Machinery
T2 - 29th International Symposium on Wearable Computers, ISWC 2025
Y2 - 12 October 2025 through 16 October 2025
ER -