Rethinking Temporal Fusion with a Unified Gradient Descent View for 3D Semantic Occupancy Prediction
Dubing Chen, Huan Zheng, Jin Fang, Xingping Dong, Xianfei Li, Wenlong Liao, Tao He, Pai Peng, Jianbing Shen
摘要
We present GDFusion, a temporal fusion method for vision-based 3D semantic occupancy prediction (Vi-sionOcc). GDFusion opens up the underexplored aspects of temporal fusion within the VisionOcc framework, focusing on both temporal cues and fusion strategies. It systematically examines the entire VisionOcc pipeline, identifying three fundamental yet previously overlooked temporal cues: scene-level consistency, motion calibration, and geometric complementation. These cues capture diverse facets of temporal evolution and make distinct contributions across various modules in the VisionOcc framework. To effectively fuse temporal signals across heterogeneous representations, we propose a novel fusion strategy by reinterpreting the formulation of vanilla RNNs. This reinterpretation leverages gradient descent on features to unify the integration of diverse temporal information, seamlessly embedding the proposed temporal cues into the network. Extensive experiments on nuScenes demonstrate that GDFusion significantly outperforms established baselines. Notably, on Occ3D benchmark, it achieves 1.4%-4.8% mIoU improvements and reduces memory consumption by 27%-72%.
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引用它的顶会 Paper3
- OccuFly: A 3D Vision Benchmark for Semantic Scene Completion from the Aerial PerspectiveMarkus Gross, Sai B. Matha, Aya Fahmy, Rui Song 等CVPR 2026 · 被引用 7 次
- ALOcc: Adaptive Lifting-Based 3D Semantic Occupancy and Cost Volume-Based Flow PredictionsDubing Chen, Jin Fang, Wencheng Han, Xinjing Cheng 等ICCV 2025 · 被引用 2 次
- Semantic Causality-Aware Vision-Based 3D Occupancy PredictionDubing Chen, Huan Zheng, Yucheng Zhou, Xianfei Li 等ICCV 2025 · 被引用 1 次
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