构建可扩展城市仿真平台,推动自动驾驶小微交通工具发展
Towards Autonomous Micromobility through Scalable Urban Simulation
- 设计高保真城市仿真系统,支持大规模机器人训练
- 通过多任务基准测试验证不同机器人在复杂城市环境中的表现
- 适合研究自主移动、智能交通与机器人仿真方向的学者
小微移动技术(如配送机器人、电动滑板车)作为车辆出行的替代方案正快速发展。当前主要依赖人工操控,在人流密集、障碍物复杂的城市场景中存在安全与效率隐患。本文提出一种可扩展的城市仿真解决方案,构建URBAN-SIM平台,包含分层城市生成、交互动力学生成和异步场景采样三大模块,提升机器人仿真中的多样性、真实性和训练效率。同时提出URBAN-BENCH基准测试集,涵盖城市移动、导航与穿越等八项任务,评估四类具身机器人(轮式与腿式)在多样地形与城市结构下的性能。实验揭示了各类机器人的优势与局限。
原文摘要 · Abstract (English)
Micromobility, which utilizes lightweight mobile machines moving in urban public spaces, such as delivery robots and mobility scooters, emerges as a promising alternative to vehicular mobility. Current micromobility depends mostly on human manual operation (in-person or remote control), which raises safety and efficiency concerns when navigating busy urban environments full of unpredictable obstacles and pedestrians. Assisting humans with AI agents in maneuvering micromobility devices presents a viable solution for enhancing safety and efficiency. In this work, we present a scalable urban simulation solution to advance autonomous micromobility. First, we build URBAN-SIM - a high-performance robot learning platform for large-scale training of embodied agents in interactive urban scenes. URBAN-SIM contains three critical modules: Hierarchical Urban Generation pipeline, Interactive Dynamics Generation strategy, and Asynchronous Scene Sampling scheme, to improve the diversity, realism, and efficiency of robot learning in simulation. Then, we propose URBAN-BENCH - a suite of essential tasks and benchmarks to gauge various capabilities of the AI agents in achieving autonomous micromobility. URBAN-BENCH includes eight tasks based on three core skills of the agents: Urban Locomotion, Urban Navigation, and Urban Traverse. We evaluate four robots with heterogeneous embodiments, such as the wheeled and legged robots, across these tasks. Experiments on diverse terrains and urban structures reveal each robot's strengths and limitations.
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