Crowd3D: Towards Hundreds of People Reconstruction from a Single Image
Hao Wen, Jing Huang, Huili Cui, Haozhe Lin, Yu-Kun Lai, Lu Fang, Kun Li
摘要
Image-based multi-person reconstruction in wide-field large scenes is critical for crowd analysis and security alert. However, existing methods cannot deal with large scenes containing hundreds of people, which encounter the challenges of large number of people, large variations in human scale, and complex spatial distribution. In this paper, we propose Crowd3D, the first framework to reconstruct the 3D poses, shapes and locations of hundreds of people with global consistency from a single large-scene image. The core of our approach is to convert the problem of complex crowd localization into pixel localization with the help of our newly defined concept, Human-scene Virtual Interaction Point (HVIP). To reconstruct the crowd with global consistency, we propose a progressive reconstruction network based on HVIP by pre-estimating a scene-level camera and a ground plane. To deal with a large number of persons and various human sizes, we also design an adaptive human-centric cropping scheme. Besides, we contribute a benchmark dataset, LargeCrowd, for crowd reconstruction in a large scene. Experimental results demonstrate the effectiveness of the proposed method. The code and the dataset are available at http://cic.tju.edu.cn/faculty/likun/projects/Crowd3D.
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引用它的顶会 Paper5
- Reconstructing Groups of People with Hypergraph Relational ReasoningBuzhen Huang, Jingyi Ju, Zhihao Li, Yangang WangICCV 2023 · 被引用 21 次
- CrowdGaussian: Reconstructing High-Fidelity 3D Gaussians for Human Crowd from a Single ImageYizheng Song, Yiyu Zhuang, Qipeng Xu, Haixiang Wang 等CVPR 2026 · 被引用 1 次
- Closely Interactive Human Reconstruction with Proxemics and Physics-Guided AdaptionBuzhen Huang, Chen Li, Chongyang Xu, Liang Pan 等CVPR 2024
- Crowd4D: Scene-Aware Monocular 4D Crowd ReconstructionHongbo Kang, Tianyi Zhou, Qingyang Yang, Hongwei wen 等ICML 2026
- Reconstructing Close Human Interaction with Appearance and Proxemics ReasoningBuzhen Huang, Chen Li, Chongyang Xu, Dongyue Lu 等CVPR 2025
它引用的顶会 Paper19
- Learning to Reconstruct 3D Human Pose and Shape via Model-Fitting in the LoopNikos Kolotouros, Georgios Pavlakos, Michael J. Black, Kostas DaniilidisICCV 2019 · 被引用 1,139 次
- PyMAF: 3D Human Pose and Shape Regression with Pyramidal Mesh Alignment Feedback LoopHongwen Zhang, Yating Tian, Xinchi Zhou, Wanli Ouyang 等ICCV 2021 · 被引用 376 次
- Camera Distance-Aware Top-Down Approach for 3D Multi-Person Pose Estimation From a Single RGB ImageGyeongsik Moon, Ju Yong Chang, Kyoung Mu LeeICCV 2019 · 被引用 368 次
- Monocular, One-stage, Regression of Multiple 3D PeopleYu Sun, Qian Bao, Wu Liu, Yili Fu 等ICCV 2021 · 被引用 335 次
- XNect: real-time multi-person 3D motion capture with a single RGB cameraDushyant Mehta, Oleksandr Sotnychenko, Franziska Mueller, Weipeng Xu 等SIGGRAPH 2020 · 被引用 267 次
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