READ: Large-Scale Neural Scene Rendering for Autonomous Driving
Zhuopeng Li, Lu Li, Jianke Zhu
摘要
With the development of advanced driver assistance systems (ADAS) and autonomous vehicles, conducting experiments in various scenarios becomes an urgent need. Although having been capable of synthesizing photo-realistic street scenes, conventional image-to-image translation methods cannot produce coherent scenes due to the lack of 3D information. In this paper, a large-scale neural rendering method is proposed to synthesize the autonomous driving scene (READ), which makes it possible to generate large-scale driving scenes in real time on a PC through a variety of sampling schemes. In order to effectively represent driving scenarios, we propose an ω-net rendering network to learn neural descriptors from sparse point clouds. Our model can not only synthesize photo-realistic driving scenes but also stitch and edit them. The promising experimental results show that our model performs well in large-scale driving scenarios.
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引用它的顶会 Paper17
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- Editable Scene Simulation for Autonomous Driving via Collaborative LLM-AgentsYuxi Wei, Zi Wang, Yifan Lu, Chenxin Xu 等CVPR 2024 · 被引用 55 次
- Real-Time Neural Rasterization for Large ScenesJeffrey Yunfan Liu, Yun Chen, Ze Yang, Jingkang Wang 等ICCV 2023 · 被引用 46 次
- UniPAD: A Universal Pre-Training Paradigm for Autonomous DrivingHonghui Yang, Sha Zhang, Di Huang, Xiaoyang Wu 等CVPR 2024 · 被引用 31 次
它引用的顶会 Paper16
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