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Going Incognito in the Metaverse: Achieving Theoretically Optimal Privacy-Usability Tradeoffs in VR

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arxiv 2208.05604 v5 pith:KAEXAMBR submitted 2022-08-11 cs.CR

classification cs.CR
keywords privacymetaverseapplicationsincognitosolutionstudiesuserswhen
verification ladder T0 review T1 audit T2 compute T3 formal
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Virtual reality (VR) telepresence applications and the so-called "metaverse" promise to be the next major medium of human-computer interaction. However, with recent studies demonstrating the ease at which VR users can be profiled and deanonymized, metaverse platforms carry many of the privacy risks of the conventional internet (and more) while at present offering few of the defensive utilities that users are accustomed to having access to. To remedy this, we present the first known method of implementing an "incognito mode" for VR. Our technique leverages local differential privacy to quantifiably obscure sensitive user data attributes, with a focus on intelligently adding noise when and where it is needed most to maximize privacy while minimizing usability impact. Our system is capable of flexibly adapting to the unique needs of each VR application to further optimize this trade-off. We implement our solution as a universal Unity (C#) plugin that we then evaluate using several popular VR applications. Upon faithfully replicating the most well-known VR privacy attack studies, we show a significant degradation of attacker capabilities when using our solution.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. From Perception to Protection: A Developer-Centered Study of Security and Privacy Threats in Extended Reality (XR)

    cs.CR 2025-09 conditional novelty 6.0 of 10

    A 23-developer interview study shows professional XR developers recall few XR-specific threats unprompted, rate unfamiliar attacks lower, and exhibit awareness gaps plus diffusion of responsibility.

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