What Do You See in Vehicle? Comprehensive Vision Solution for In-Vehicle Gaze Estimation
Yihua Cheng, Yaning Zhu, Zongji Wang, Hongquan Hao, Yongwei Liu, Shiqing Cheng, Xi Wang, Hyung Jin Chang
摘要
Driver's eye gaze holds a wealth of cognitive and intentional cues crucial for intelligent vehicles. Despite its significance, research on in-vehicle gaze estimation remains limited due to the scarcity of comprehensive and wellannotated datasets in real driving scenarios. In this paper, we present three novel elements to advance in-vehicle gaze research. Firstly, we introduce IVGaze, a pioneering dataset capturing in-vehicle gaze, collected from 125 subjects and covering a large range of gaze and head poses within vehicles. In this dataset, we propose a new visionbased solution for in-vehicle gaze collection, introducing a refined gaze target calibration method to tackle annotation challenges. Second, our research focuses on in-vehicle gaze estimation leveraging the IVGaze. In-vehicle face images often suffer from low resolution, prompting our introduction of a gaze pyramid transformer that leverages transformer-based multilevel features integration. Expanding upon this, we introduce the dual-stream gaze pyramid transformer (GazeDPTR). Employing perspective transformation, we rotate virtual cameras to normalize images, utilizing camera pose to merge normalized and original images for accurate gaze estimation. GazeDPTR shows stateof-the-art performance on the IVGaze dataset. Thirdly, we explore a novel strategy for gaze zone classification by extending the GazeDPTR. A foundational tri-plane and project gaze onto these planes are newly defined. Leveraging both positional features from the projection points and visual attributes from images, we achieve superior performance compared to relying solely on visual features, substantiating the advantage of gaze estimation. Our project is available at https://yihua.zone/work/ivgaze .
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引用它的顶会 Paper9
- OmniGaze: Reward-inspired Generalizable Gaze Estimation in the WildHongyu Qu, Jianan Wei, Xiangbo Shu, Yazhou Yao 等NeurIPS 2025 · 被引用 15 次
- Where, What, Why: Towards Explainable Driver Attention PredictionYuchen Zhou, Jiayu Tang, Xiaoyan Xiao, Yueyao Lin 等ICCV 2025 · 被引用 8 次
- Differential Contrastive Training for Gaze EstimationLin Zhang, Yi Tian, Xiyun Wang, Wanru Xu 等ACM MM 2025 · 被引用 5 次
- FIFA: Fine-grained Inter-frame Attention for Driver's Video Gaze EstimationDaosong Hu, Mingyue Cui, Kai HuangCVPR 2025
- Seeing the Unseen: Physics-as-Representation for Generalizable Gaze PerceptionYunfeng Xiao, Xiaowei Bai, Hao Su, Hao He 等ICML 2026
它引用的顶会 Paper8
- Gaze360: Physically Unconstrained Gaze Estimation in the WildPetr Kellnhofer, Adrià Recasens, Simon Stent, Wojciech Matusik 等ICCV 2019 · 被引用 469 次
- A Coarse-to-Fine Adaptive Network for Appearance-Based Gaze EstimationYihua Cheng, Shiyao Huang, Fei Wang, Chen Qian 等AAAI 2020 · 被引用 204 次
- PureGaze: Purifying Gaze Feature for Generalizable Gaze EstimationYihua Cheng, Yiwei Bao, Feng LuAAAI 2022 · 被引用 121 次
- Contrastive Regression for Domain Adaptation on Gaze EstimationYaoming Wang, Yangzhou Jiang, Jin Li, Bingbing Ni 等CVPR 2022 · 被引用 80 次
- Generalizing Gaze Estimation with Rotation ConsistencyYiwei Bao, Yunfei Liu, Haofei Wang, Feng LuCVPR 2022 · 被引用 54 次
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