arXiv:2606.08725cs.ROcs.SY2026-06中稿 · ICRA

用可微约束优化实现低延迟、无碰撞的遥操作轨迹规划

Real-Time and Accurate Collision-Free Teleoperation via Differentiable Constraint-Based Trajectory Planning

论文配图:Real-Time and Accurate Collision-Free Teleoperation via Differentiable Constraint-Based Trajectory Planning
图 1 · 摘自论文原文
  • 基于凸优化对偶性构建可微碰撞约束,支持复杂几何建模
  • 在模拟与真实机器人上均实现更低计算耗时和更平滑轨迹
  • 适合需高精度避障的工业遥操作场景

在遥操作中,操作者通常仅控制末端执行器位姿,易导致机械臂自碰撞或与环境障碍物碰撞,因关节与连杆未被单独控制。现有方法多采用基于最优控制的轨迹规划来缓解此问题,但依赖可微约束的求解器常通过球体近似机器人和障碍物以简化几何,牺牲精度;或近似梯度,降低收敛速度并增加计算时间。本文提出将一种基于凸优化对偶性的最新可微避障约束形式,适配至遥操作场景,使用胶囊模型表示机器人,多面体表示环境。在不同障碍物数量的仿真中对比当前先进方法,并在真实世界中于UR5e机械臂上进行测试。结果表明,该方法在保持更高几何建模精度的同时,显著降低计算时间,实现更平滑且无碰撞的末端执行器遥操作。

原文摘要 · Abstract (English)

In teleoperation, the human operator typically controls only the end-effector pose, which often leads to self-collisions of the manipulator and collisions with environmental obstacles, since joints and links are not controlled individually. A common strategy to mitigate this issue is to enhance the operator's input using optimal-control-based trajectory planning. As derivative-based solvers require differentiable constraints, existing approaches either approximate robots and obstacles with spheres, reducing geometric accuracy, or approximate derivatives, degrading convergence and increasing computation times. We address these limitations by adapting a recent formulation of differentiable collision-avoidance constraints, based on duality in convex optimization, to the teleoperation setting. The robot is approximated with capsules and the environment with polytopes. We compare the resulting trajectory planning method against state-of-the-art techniques in simulation with varying numbers of obstacles and evaluate it on a UR5e manipulator in a real-world teleoperation test. Results show that our approach achieves lower computation times while enabling more accurate obstacle modeling, leading to smoother and collision-free end-effector teleoperation.

遥操作轨迹规划避障可微优化

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