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Reduced Motion Sickness Using Vestibular EEG-Guided tACS Under Mismatched Physical Rotation and VR Visual Motion

  • Gang Li
  • , Mark McGill
  • , Alana Grant
  • , Katharina Poehlmann
  • , Rory Holden
  • , Stephen Brewster
  • , Frank Pollick
  • School of Psychology and Neuroscience
  • University of Glasgow
  • School of Computer Science

Research output: Contribution to journalArticlepeer-review

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Abstract

The increasing use of virtual reality (VR) in public transportation enables travelers to engage in immersive entertainment or productive tasks, thereby enhancing the overall travel experience. However, mismatched VR visual motion and physical car motion can cause motion sickness (MS), leading to nausea, postural instability and reduced time for enjoyment or productive tasks. Thus, the benefits of using VR in transportation systems are currently limited to individuals who do not experience MS. Thus, effective MS mitigation is essential for improving travel safety, maximizing travel time, and expanding VR accessibility. Neuromodulation targeting the vestibular apparatus, such as bone-conducted vibration (BCV), has shown promise in reducing MS. However, it remains unclear whether neuromodulation directly targeting vestibular cortical regions, such as transcranial alternating current stimulation (tACS), is superior. This paper focuses on the design and validation of a novel vestibular cortical neuromodulation approach using tACS in mitigating MS in a novel simulated in-car VR environment. Eighty participants were recruited to evaluate the tACS approach. The results demonstrate that the proposed tACS approach effectively reduces nausea, enhances postural stability, and extends survival time in MS. Compared to BCV, tACS demonstrates a faster onset of action and longer mitigation effects. However, from an applied perspective, the effects of our tACS approach were relatively short-lived and accompanied by side effects such as tingling and itching.

Original languageEnglish
Pages (from-to)11603-11618
Number of pages16
JournalIEEE Transactions on Intelligent Transportation Systems
Volume26
Issue number8
Early online date23 Jun 2025
DOIs
Publication statusPublished - 2025

Funding

Received 26 April 2024; revised 15 November 2024, 3 January 2025, and 13 April 2025; accepted 31 May 2025. Date of publication 23 June 2025; date of current version 6 August 2025. This work was supported in part by European Research Council (ERC) through European Union’s Horizon 2020 Research and Innovation Program under Grant 835197 and in part by the Medical Research Council Impact Account Acceleration (MRC IAA) under Grant MR/X502807/1. The Associate Editor for this article was Q. E. Wu. (Corresponding author: Frank Pollick.) This work involved human subjects or animals in its research. Approval of all ethical and experimental procedures and protocols was granted by the University of Glasgow Ethics Committee under Application No. 300200243.

FundersFunder number
European Research Council
Horizon 2020 Framework Programme835197
Medical Research CouncilMR/X502807/1

Keywords

  • brain stimulation
  • In-car virtual reality motion sickness (MS)
  • transcranial alternating current stimulation

ASJC Scopus subject areas

  • Automotive Engineering
  • Mechanical Engineering
  • Computer Science Applications

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