LiteVR: Interpretable and Lightweight Cybersickness Detection using Explainable AI
Ripan Kumar Kundu, Rifatul Islam, John Quarles, Khaza Anuarul Hoque
Abstract
Cybersickness is a common ailment associated with virtual reality (VR) user experiences. Several automated methods exist based on machine learning (ML) and deep learning (DL) to detect cyber-sickness. However, most of these cybersickness detection methods are perceived as computationally intensive and black-box methods. Thus, those techniques are neither trustworthy nor practical for deploying on standalone energy-constrained VR head-mounted devices (HMDs). In this work, we present an explainable artificial intelligence (XAI)-based framework Lite VR for cybersickness detection, explaining the model's outcome, reducing the feature dimensions, and overall computational costs. First, we develop three cybersick-ness DL models based on long-term short-term memory (LSTM), gated recurrent unit (GRU), and multilayer perceptron (MLP). Then, we employed a post-hoc explanation, such as SHapley Additive Explanations (SHAP), to explain the results and extract the most dominant features of cybersickness. Finally, we retrain the DL models with the reduced number of features. Our results show that eye-tracking features are the most dominant for cybersickness detection. Furthermore, based on the XAI-based feature ranking and dimensionality reduction, we significantly reduce the model's size by up to 4.3×, training time by up to 5.6×, and its inference time by up to 3.8×, with higher cybersickness detection accuracy and low regression error (i.e., on Fast Motion Scale (FMS)). Our proposed lite LSTM model obtained an accuracy of 94% in classifying cyber-sickness and regressing (i.e., FMS 1–10) with a Root Mean Square Error (RMSE) of 0.30, which outperforms the state-of-the-art. Our proposed Lite VR framework can help researchers and practitioners analyze, detect, and deploy their DL-based cybersickness detection models in standalone VR HMDs.
Ask about this paper
Your agent reads all of it.
Lune indexed this paper to the last equation, along with the top-tier papers that cite it. Ask a question and the answer quotes them.
Your agent calls
Luneget_paper_fulltext
Free to start. No credit card required.
Terminal
Install the CLIlune papers fulltext f33bd81c-1277-4f9c-a07a-21b11aecd17eCited by top-tier papers2
- Predicting and Explaining Cognitive Load, Attention, and Working Memory in Virtual MultitaskingJyotirmay Nag Setu, Joshua M Le, Ripan Kumar Kundu, Barry Giesbrecht et al.IEEE VR 2025 · 19 citations
- Towards Consumer-Grade Cybersickness Prediction: Multi-Model Alignment for Real-Time Vision-Only InferenceYitong Zhu, Zhuowen Liang, Yiming Wu, Tangyao Li et al.ACM MM 2025 · 3 citations
Builds on3
- A Deep Cybersickness Predictor Based on Brain Signal Analysis for Virtual Reality ContentsJinwoo Kim, Woojae Kim, Heeseok Oh, Seongmin Lee et al.ICCV 2019 · 90 citations
- Using Fuzzy Logic to Involve Individual Differences for Predicting Cybersickness during VR NavigationYuyang Wang, Jean-Rémy Chardonnet, Frédéric Mérienne, Jivka OvtcharovaIEEE VR 2021 · 30 citations
- Assessment of the Simulator Sickness Questionnaire for Omnidirectional VideosAshutosh Singla, Steve Göring, Dominik Keller, Rakesh Rao Ramachandra Rao et al.IEEE VR 2021 · 21 citations
Related papers
- Predicting Cybersickness Trend and Extent Based on FMS Labeled DatasetJun Ryu, Gerard J. KimIEEE VR 2026 · 1 citation
- Extended Reality Cybersickness Assessment via User Review AnalysisShuqing Li, Qisheng Zheng, Cuiyun Gao, Jia Feng et al.ISSTA 2025
- PRECYSE: Predicting Cybersickness using Transformer for Multimodal Time-Series Sensor DataDayoung Jeong, Kyungsik HanUbiComp 2024 · 35 citations
- Investigating Personalization Techniques for Improved Cybersickness Prediction in Virtual Reality EnvironmentsUmama Tasnim, Rifatul Islam, Kevin Desai, John QuarlesIEEE VR 2024 · 29 citations
- Two Phase Multi-Task Learning for Cybersickness Prediction and Adaptive ReductionA. E. M. Ridwan, Purnota Saha, John Quarles, Rifatul IslamIEEE VR 2026 · 1 citation
