打造实时高保真自动驾驶闭环仿真平台,支持真实场景测试。
HUGSIM: A Real-Time, Photo-Realistic and Closed-Loop Simulator for Autonomous Driving
- 用3D高斯点阵重建真实图像深度,实现高质量视角合成。
- 支持车辆状态动态更新,完整闭环运行超过70段真实数据集序列。
- 适合算法开发者在逼真环境中测试与优化自动驾驶系统。
过去几十年,自动驾驶算法在感知、规划和控制方面取得显著进展。然而,单独评估各模块无法全面反映系统整体性能,亟需更综合的评估方法。为此,我们提出HUGSIM——一个实时、高保真、闭环的自动驾驶仿真平台。通过3D高斯点阵将拍摄的2D RGB图像提升至3D空间,显著改善闭环场景下的渲染质量,并构建完整的闭环环境。针对闭环中的新视角合成挑战,如视角外推和360度车辆渲染,我们进行了有效应对。除新视角合成外,HUGSIM还实现了完整的闭环模拟:根据控制指令动态更新自车与周围物体的状态及观测。此外,平台涵盖来自KITTI-360、Waymo、nuScenes和PandaSet的70多段序列,以及超过400种不同场景,为现有自动驾驶算法提供公平且真实的评估基准。HUGSIM不仅可作为直观的评估工具,还可用于在高保真闭环环境中微调自动驾驶算法。
原文摘要 · Abstract (English)
In the past few decades, autonomous driving algorithms have made significant progress in perception, planning, and control. However, evaluating individual components does not fully reflect the performance of entire systems, highlighting the need for more holistic assessment methods. This motivates the development of HUGSIM, a closed-loop, photo-realistic, and real-time simulator for evaluating autonomous driving algorithms. We achieve this by lifting captured 2D RGB images into the 3D space via 3D Gaussian Splatting, improving the rendering quality for closed-loop scenarios, and building the closed-loop environment. In terms of rendering, We tackle challenges of novel view synthesis in closed-loop scenarios, including viewpoint extrapolation and 360-degree vehicle rendering. Beyond novel view synthesis, HUGSIM further enables the full closed simulation loop, dynamically updating the ego and actor states and observations based on control commands. Moreover, HUGSIM offers a comprehensive benchmark across more than 70 sequences from KITTI-360, Waymo, nuScenes, and PandaSet, along with over 400 varying scenarios, providing a fair and realistic evaluation platform for existing autonomous driving algorithms. HUGSIM not only serves as an intuitive evaluation benchmark but also unlocks the potential for fine-tuning autonomous driving algorithms in a photorealistic closed-loop setting.
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