Deep Non-line-of-sight Imaging from Under-scanning Measurements
Yue Li, Yueyi Zhang, Juntian Ye, Feihu Xu, Zhiwei Xiong
Abstract
Active confocal non-line-of-sight (NLOS) imaging has successfully enabled seeing around corners relying on high-quality transient measurements. However, acquiring spatial-dense transient measurement is time-consuming, raising the question of how to reconstruct satisfactory results from under-scanning measurements (USM). The existing solutions, involving the traditional algorithms, however, are hindered by unsatisfactory results or long computing times. To this end, we propose the first deep-learning-based approach to NLOS imaging from USM. Our proposed end-to-end network is composed of two main components: the transient recovery network (TRN) and the volume reconstruction network (VRN). Specifically, TRN takes the under-scanning measurements as input, utilizes a multiple kernel feature extraction module and a multiple feature fusion module, and outputs sufficient-scanning measurements at the high-spatial resolution. Afterward, VRN incorporates the linear physics prior of the light-path transport model and reconstructs the hidden volume representation. Besides, we introduce regularized constraints that enhance the perception of more local details while suppressing smoothing effects. The proposed method achieves superior performance on both synthetic data and public real-world data, as demonstrated by extensive experimental results with different under-scanning grids. Moreover, the proposed method delivers impressive robustness at an extremely low scanning grid (i.e., 8 × 8) and offers high-speed inference (i.e., 50 times faster than the existing iterative solution). The code is available at https://github.com/Depth2World/Under-scanning_NLOS .
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Cited by top-tier papers6
- Virtual Scanning: Unsupervised Non-line-of-sight Imaging from Irregularly Undersampled TransientsXingyu Cui, Huanjing Yue, Song Li, Xiangjun Yin et al.NeurIPS 2024 · 13 citations
- Toward Dynamic Non-Line-of-Sight Imaging with Mamba Enforced Temporal ConsistencyYue Li, Yi Sun, Shida Sun, Juntian Ye et al.NeurIPS 2024 · 9 citations
- Dual-branch Graph Feature Learning for NLOS ImagingXiongfei Su, Tianyi Zhu, Lina Liu, Zheng Chen et al.AAAI 2025 · 4 citations
- Generalizable Non-Line-of-Sight Imaging with Learnable Physical PriorsShida Sun, Yue Li, Yueyi Zhang, Zhiwei XiongICCV 2025 · 4 citations
- TransiT: Transient Transformer for Non-Line-of-Sight VideographyRuiqian Li, Siyuan Shen, Suan Xia, Ziheng Wang et al.ICCV 2025 · 1 citation
Builds on7
- Convolutional Approximations to the General Non-Line-of-Sight Imaging OperatorByeongjoo Ahn, Akshat Dave, Ashok Veeraraghavan, Ioannis Gkioulekas et al.ICCV 2019 · 67 citations
- Seeing Around Street Corners: Non-Line-of-Sight Detection and Tracking In-the-Wild Using Doppler RadarNicolas Scheiner, Florian Kraus, Fangyin Wei, Buu Phan et al.CVPR 2020
- NLOST: Non-Line-of-Sight Imaging with TransformerYue Li, Jiayong Peng, Juntian Ye, Yueyi Zhang et al.CVPR 2023
- Non-Line-of-Sight Surface Reconstruction Using the Directional Light-Cone TransformSean I. Young, David B. Lindell, Bernd Girod, David Taubman et al.CVPR 2020
- Optical Non-Line-of-Sight Physics-Based 3D Human Pose EstimationMariko Isogawa, Ye Yuan, Matthew O'Toole, Kris M. KitaniCVPR 2020
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