Multi-View Pedestrian Occupancy Prediction with a Novel Synthetic Dataset
Sithu Aung, Min-Cheol Sagong, Junghyun Cho
Abstract
We address an advanced challenge of predicting pedestrian occupancy as an extension of multi-view pedestrian detection in urban traffic. To support this, we have created a new synthetic dataset called MVP-Occ, designed for dense pedestrian scenarios in large-scale scenes. Our dataset provides detailed representations of pedestrians using voxel structures, accompanied by rich semantic scene understanding labels, facilitating visual navigation and insights into pedestrian spatial information. Furthermore, we present a robust baseline model, termed OmniOcc, capable of predicting both the voxel occupancy state and panoptic labels for the entire scene from multi-view images. Through in-depth analysis, we identify and evaluate the key elements of our proposed model, highlighting their specific contributions and importance.
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- OccFormer: Dual-path Transformer for Vision-based 3D Semantic Occupancy PredictionYunpeng Zhang, Zheng Zhu, Dalong DuICCV 2023 · 354 citations
- MonoScene: Monocular 3D Semantic Scene CompletionAnh-Quan Cao, Raoul de CharetteCVPR 2022 · 251 citations
- SHIFT: A Synthetic Driving Dataset for Continuous Multi-Task Domain AdaptationTao Sun, Mattia Segù, Janis Postels, Yuxuan Wang et al.CVPR 2022 · 174 citations
- NDC-Scene: Boost Monocular 3D Semantic Scene Completion in Normalized Device Coordinates SpaceJiawei Yao, Chuming Li, Keqiang Sun, Yingjie Cai et al.ICCV 2023 · 150 citations
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