用强化学习让自行车机器人学会翻跟头、跳台阶等高难度动作。
Bicycle Acrobatics with Reinforcement Learning

- 通过多种强化学习策略,让机器人自主掌握跳跃、翻转等复杂动作。
- 在真实机器人上实现超过20次连续动作,最高跳1米高台。
- 适合对机器人运动控制、智能体行为编排感兴趣的开发者。
自行车机器人速度快、能耗低,但其简单机械结构和欠驱动、非完整动力学特性使其难以完成高敏捷性操作。本文利用强化学习(RL)使自行车机器人学会并组合多种动态特技动作。通过路径点跟踪、姿态到达、扭转追踪、引导跟踪和运动模仿等多种RL方法,机器人掌握了单表与多表前跳、侧跳、可转向跳、前空翻、起立动作、倒立动作、骑行、后轮翘起、兔跳及三点转弯等技能。为协调这些行为,引入基于状态触发的调度器,在不同策略间平滑切换,实现长时程特技表演。实验在自研自行车机器人UMV上进行,仿真与实物验证均表明:机器人可反复跨越高达1米的平台,连续执行超过15次自主跳跃并沿路径点移动;能应对未见过的多平台组合;连续完成超过20次包含起立、跳跃、翻转、倒立的复合动作序列;在超过10次连续试验中完成自主且可转向的后轮翘起、侧跳与单轮落地动作组合。结果表明,强化学习可赋予自行车机器人此前主要见于四足平台的敏捷性,同时保持轮式运动的速度与效率,为自行车特技运动奠定基础。
原文摘要 · Abstract (English)
Bicycle robots are fast and energy efficient, but their simple mechanical design and their underactuated and non-holonomic dynamics make highly agile maneuvers difficult to achieve. Here, we use Reinforcement Learning (RL) to enable a bicycle robot to learn and compose a diverse repertoire of dynamic acrobatic stunts. Using different RL formulations such as waypoint following, pose reaching, twist tracking, guided tracking, and motion imitation, the robot acquires autonomous single and multi-table forward and lateral jumps, steerable jumps, front flips, kip-ups, kip-downs, driving, wheelies, bunny hops, and three-point turns. To coordinate these behaviors, we introduce an orchestrator that transitions between policies using state-dependent triggers, enabling robust long-horizon acrobatic stunts. We validate the approach on the Ultra Mobility Vehicle (UMV), a custom bicycle robot, in simulation and hardware. The robot repeatedly traverses tables up to 1 m high, performs more than 15 consecutive autonomous jumps while following waypoints, handles previously unseen multi-table configurations, executes continuous repertoires of kipups, jumps, flips, kip-downs, over more than 20 consecutive trials, and performs more than 10 consecutive autonomous and steerable repertoires of wheelies, lateral jumps, and single-wheel jump downs. These results demonstrate that RL can endow bicycle robots with levels of agility previously associated primarily with legged platforms while preserving the speed and efficiency of wheeled locomotion, establishing a foundation for bicycle acrobatics.
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