Cybersickness Reduction via Gaze-Contingent Image Deformation
Colin Groth, Marcus A. Magnor, Steve Grogorick, Martin Eisemann, Piotr Didyk
Abstract
Virtual reality has ushered in a revolutionary era of immersive content perception. However, a persistent challenge in dynamic environments is the occurrence of cybersickness arising from a conflict between visual and vestibular cues. Prior techniques have demonstrated that limiting illusory self-motion, so-called vection, by blurring the peripheral part of images, introducing tunnel vision, or altering the camera path can effectively reduce the problem. Unfortunately, these methods often alter the user's experience with visible changes to the content. In this paper, we propose a new technique for reducing vection and combating cybersickness by subtly lowering the screen-space speed of objects in the user's peripheral vision. The method is motivated by our hypothesis that small modifications to the objects' velocity in the periphery and geometrical distortions in the peripheral vision can remain unnoticeable yet lead to reduced vection. This paper describes the experiments supporting this hypothesis and derives its limits. Furthermore, we present a method that exploits these findings by introducing subtle, screen-space geometrical distortions to animation frames to counteract the motion contributing to vection. We implement the method as a realtime post-processing step that can be integrated into existing rendering frameworks. The final validation of the technique and comparison to an alternative approach confirms its effectiveness in reducing cybersickness.
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Cited by top-tier papers3
- Peripheral Teleportation: A Rest Frame Design to Mitigate Cybersickness During Virtual LocomotionTongyu Nie, Courtney Hutton Pospick, Ville Cantory, Danhua Zhang et al.IEEE VR 2025 · 7 citations
- Overdriving Visual Depth Perception via Sound Modulation in VRDaniel Jiménez Navarro, Colin Groth, Xi Peng, Jorge Pina et al.IEEE VR 2026 · 2 citations
- Dichoptic FoveationHenry Kam, Colin Groth, Jenna Kang, Pratham Saraf et al.SIGGRAPH 2026
Builds on4
- Omnidirectional Galvanic Vestibular Stimulation in Virtual RealityColin Groth, Jan-Philipp Tauscher, Nikkel Heesen, Max Hattenbach et al.IEEE VR 2022 · 51 citations
- Mixing in Reverse Optical Flow to Mitigate Vection and Simulation Sickness in Virtual RealitySu Han Park, Bin Han, Gerard Jounghyun KimCHI 2022 · 41 citations
- Blink-Suppressed Hand RedirectionAndré Zenner, Kora Persephone Regitz, Antonio KrügerIEEE VR 2021 · 39 citations
- The Effect of a Foveated Field-of-view Restrictor on VR SicknessIsayas Berhe Adhanom, Nathan Navarro Griffin, Paul R. MacNeilage, Eelke FolmerIEEE VR 2020 · 32 citations
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