SparseOcc: Rethinking Sparse Latent Representation for Vision-Based Semantic Occupancy Prediction
Pin Tang, Zhongdao Wang, Guoqing Wang, Jilai Zheng, Xiangxuan Ren, Bailan Feng, Chao Ma
Abstract
Vision-based perception for autonomous driving requires an explicit modeling of a 3D space, where 2D latent representations are mapped and subsequent 3D operators are applied. However, operating on dense latent spaces introduces a cubic time and space complexity, which limits scalability in terms of perception range or spatial resolution. Existing approaches compress the dense representation using projections like Bird's Eye View (BEV) or Tri-Perspective View (TPV). Although efficient, these projections result in information loss, especially for tasks like semantic occupancy prediction. To address this, we propose SparseOcc, an efficient occupancy network inspired by sparse point cloud processing. It utilizes a lossless sparse latent representation with three key innovations. Firstly, a 3D sparse diffuser performs latent completion using spatially decomposed 3D sparse convolutional kernels. Secondly, a feature pyramid and sparse interpolation enhance scales with information from others. Finally, the transformer head is redesigned as a sparse variant. SparseOcc achieves a remarkable 74.9% reduction on FLOPs over the dense baseline. Interestingly, it also improves accuracy, from 12.8% to 14.1% mIOU, which in part can be attributed to the sparse representation's ability to avoid hallucinations on empty voxels.
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Install the CLIlune papers fulltext 5b025309-f4cd-4536-addd-5d6468574f2cCited by top-tier papers36
- OPUS: Occupancy Prediction Using a Sparse SetJiabao Wang, Zhaojiang Liu, Qiang Meng, Liujiang Yan et al.NeurIPS 2024 · 67 citations
- GaussianFlowOcc: Sparse and Weakly Supervised Occupancy Estimation using Gaussian Splatting and Temporal FlowSimon Boeder, Fabian Gigengack, Benjamin RisseICCV 2025 · 28 citations
- WorldLens: Full-Spectrum Evaluations of Driving World Models in Real WorldAo Liang, Lingdong Kong, Tianyi Yan, Hongsi Liu et al.CVPR 2026 · 28 citations
- DVGT: Driving Visual Geometry TransformerSicheng Zuo, Zixun Xie, Wenzhao Zheng, Shaoqing Xu et al.CVPR 2026 · 23 citations
- QuadricFormer: Scene as Superquadrics for 3D Semantic Occupancy PredictionSicheng Zuo, Wenzhao Zheng, Xiaoyong Han, Longchao Yang et al.NeurIPS 2025 · 23 citations
Builds on26
- Swin Transformer: Hierarchical Vision Transformer using Shifted WindowsZe Liu, Yutong Lin, Yue Cao, Han Hu et al.ICCV 2021 · 31,683 citations
- Deformable DETR: Deformable Transformers for End-to-End Object DetectionXizhou Zhu, Weijie Su, Lewei Lu, Bin Li et al.ICLR 2021 · 7,353 citations
- SemanticKITTI: A Dataset for Semantic Scene Understanding of LiDAR SequencesJens Behley, Martin Garbade, Andres Milioto, Jan Quenzel et al.ICCV 2019 · 2,345 citations
- BEVDepth: Acquisition of Reliable Depth for Multi-View 3D Object DetectionYinhao Li, Zheng Ge, Guanyi Yu, Jinrong Yang et al.AAAI 2023 · 954 citations
- SurroundOcc: Multi-Camera 3D Occupancy Prediction for Autonomous DrivingYi Wei, Linqing Zhao, Wenzhao Zheng, Zheng Zhu et al.ICCV 2023 · 380 citations
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- OccFormer: Dual-path Transformer for Vision-based 3D Semantic Occupancy PredictionYunpeng Zhang, Zheng Zhu, Dalong DuICCV 2023 · 354 citations
- Tri-Perspective View for Vision-Based 3D Semantic Occupancy PredictionYuanhui Huang, Wenzhao Zheng, Yunpeng Zhang, Jie Zhou et al.CVPR 2023
- COTR: Compact Occupancy TRansformer for Vision-Based 3D Occupancy PredictionQihang Ma, Xin Tan, Yanyun Qu, Lizhuang Ma et al.CVPR 2024 · 30 citations
- OctOcc: High-Resolution 3D Occupancy Prediction with OctreeWenzhe Ouyang, Xiaolin Song, Bailan Feng, Zenglin XuAAAI 2024 · 12 citations
- SparseWorld-TC: Trajectory-Conditioned Sparse Occupancy World ModelJiayuan Du, Yiming Zhao, Zhenglong Guo, Yong Pan et al.CVPR 2026 · 6 citations
