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◆ IEEE transactions on pattern analysis and machine intelligence2026-08-31

KaleidoEye: A Large-scale Dataset and Benchmark for Slippage Robust Gaze Tracking in HMDs.

Yingxi Li, Xiaowei Bai, Liang Xie, Hao Su, Zhuoru Li, Feitian Zhang, Ye Yan, Erwei Yin

原始摘要(英文原文)· Original abstract
Egocentric gaze tracking is essential for immersive interaction on head-mounted displays (HMDs). However, existing studies typically assume a fixed and tightly fitted headset placement, overlooking the inevitable HMD slippage under real-world conditions. Although several datasets with variable wearing positions have been proposed, the lack of diverse and annotated slippage hinders slippage-robust gaze tracking research. In this paper, we present KaleidoEye, the first large-scale gaze tracking dataset with precisely quantified 6DoF slippage poses. It contains 1.75 million binocular images from 30 subjects, with gaze targets and curated eye-geometry annotations. By covering 11,130 slippage conditions, KaleidoEye captures extensive eye appearance distortions and gaze-space misalignments, enabling comprehensive studies of gaze-tracking under slippage. Based on this dataset, we propose EST-Gaze, a lightweight and slippage-robust gaze-tracking model for resource-constrained devices. By leveraging eye-edge-guided spatial transformations, EST-Gaze learns task-driven input alignment before gaze regression, thereby mitigating slippage-induced image-layout variations and feature-distribution shifts to improve gaze-estimation accuracy. Experimental results demonstrate that KaleidoEye significantly enhances the robustness of existing gaze-tracking models under headset slippage. Moreover, EST-Gaze achieves an average error of 2.53$^\circ$ under slippage without test-time user recalibration, while maintaining real-time performance (40 FPS on HoloLens 2), achieving a favorable trade-off between accuracy and efficiency among the state-of-the-art approaches.
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KaleidoEye: A Large-scale Dataset and Benchmark for Slippage Robust Gaze Tracking in HMDs. — 科研速览 Science Skim