Cam4DOcc: Benchmark for Camera-Only 4D Occupancy Forecasting in Autonomous Driving Applications
Junyi Ma, Xieyuanli Chen, Jiawei Huang, Jingyi Xu, Zhen Luo, Jintao Xu, Weihao Gu, Rui Ai, Hesheng Wang
Abstract
Understanding how the surrounding environment changes is crucial for performing downstream tasks safely and reliably in autonomous driving applications. Recent occupancy estimation techniques using only camera images as input can provide dense occupancy representations of large-scale scenes based on the current observation. However, they are mostly limited to representing the current 3D space and do not consider the future state of surrounding objects along the time axis. To extend camera-only occupancy estimation into spatiotemporal prediction, we propose Cam4DOcc, a new benchmark for camera-only 4D occupancy forecasting, evaluating the surrounding scene changes in a near future. We build our benchmark based on multiple publicly available datasets, including nuScenes, nuScenes-Occupancy, and Lyft-Level5, which provides sequential occupancy states of general movable and static objects, as well as their 3D backward centripetal flow. To establish this benchmark for future research with comprehensive comparisons, we introduce four baseline types from diverse camera-based perception and prediction implementations, including a static-world occupancy model, voxelization of point cloud prediction, 2D-3D instance-based prediction, and our proposed novel end-to-end 4D occupancy forecasting network. Furthermore, the standardized evaluation protocol for preset multiple tasks is also provided to compare the performance of all the proposed baselines on present and future occupancy estimation with respect to objects of interest in autonomous driving scenarios. The dataset and our implementation of all four baselines in the proposed Cam4DOcc benchmark are released as open source at https://github.com/haomo-ai/Cam4DOcc.
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Install the CLIlune papers fulltext 7c88f6f0-30bb-4345-9a9e-35554acbc830Cited by top-tier papers17
- RadarOcc: Robust 3D Occupancy Prediction with 4D Imaging RadarFangqiang Ding, Xiangyu Wen, Yunzhou Zhu, Yiming Li et al.NeurIPS 2024 · 66 citations
- Driving in the Occupancy World: Vision-Centric 4D Occupancy Forecasting and Planning via World Models for Autonomous DrivingYu Yang, Jianbiao Mei, Yukai Ma, Siliang Du et al.AAAI 2025 · 53 citations
- GaussianFlowOcc: Sparse and Weakly Supervised Occupancy Estimation using Gaussian Splatting and Temporal FlowSimon Boeder, Fabian Gigengack, Benjamin RisseICCV 2025 · 28 citations
- COME: Adding Scene-Centric Forecasting Control to Occupancy World ModelYining Shi, Kun Jiang, Qiang Meng, Ke Wang et al.NeurIPS 2025 · 17 citations
- ShelfOcc: Native 3D Supervision beyond LiDAR for Vision-Based Occupancy EstimationSimon Boeder, Fabian Gigengack, Simon Roesler, Holger Caesar et al.CVPR 2026 · 7 citations
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- SurroundOcc: Multi-Camera 3D Occupancy Prediction for Autonomous DrivingYi Wei, Linqing Zhao, Wenzhao Zheng, Zheng Zhu et al.ICCV 2023 · 380 citations
- FIERY: Future Instance Prediction in Bird's-Eye View from Surround Monocular CamerasAnthony Hu, Zak Murez, Nikhil Mohan, Sofía Dudas et al.ICCV 2021 · 329 citations
- OpenOccupancy: A Large Scale Benchmark for Surrounding Semantic Occupancy PerceptionXiaofeng Wang, Zheng Zhu, Wenbo Xu, Yunpeng Zhang et al.ICCV 2023 · 270 citations
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