arXiv:2607.15733cs.RO2026-07

用短时滚动预测实现机器人快速避障,兼顾响应与计算效率。

A Task-Space Receding Horizon Controller for Fast Collision Avoidance

论文配图:A Task-Space Receding Horizon Controller for Fast Collision Avoidance
图 1 · 摘自论文原文
  • 在任务空间中设计滚动时域控制器,通过简化预演生成避障参考点。
  • 40自由度系统仿真显示中等时域平衡了前瞻能力与计算开销。
  • 实机测试无需精确惯性参数,性能优于传统MPC和动态优化方法。

机器人操作臂实时避障需快速响应突发障碍物运动并提前预见未来约束,避免陷入近似约束陷阱。全模型预测控制虽具前瞻性,但随时域长度、模型精度和活跃几何约束数量增加,在线计算成本迅速上升。相反,无时域的反应式方法虽高效,但在动态杂乱环境中易短视。本文提出一种任务空间递推时域控制器:利用短时接触一致预演生成满足内部不穿透约束的终端运动学参考,并仅计算向该参考平滑过渡的第一步输入。预演基于迭代动力学求解器,在膨胀的凸形机器人与障碍物几何体上执行,使接触、动态障碍物运动及自碰撞自动塑造终端参考,无需完整轨迹约束优化。分析表明,在无接触激活情况下,闭环系统在标准正则条件下实现局部指数任务空间调节;对预演中激活的接触,给出离散更新形式,并量化运动障碍物对正常工作集的影响。40自由度多链系统仿真显示,中等时域可平衡前瞻、响应速度与计算成本。6自由度平台硬件实验表明,无需精确惯性参数即可实现稳定仿真到现实迁移,与动态优化织构及模型预测控制(MPC)基线对比,在动态杂乱环境中成功率更高,同时保持适合实时执行的求解时间。

原文摘要 · Abstract (English)

Real-time collision avoidance for robotic manipulators requires fast reactions to unexpected obstacle motion and lookahead to avoid becoming trapped by near-future constraints. Full model predictive control can provide this foresight, but its online cost may grow quickly with horizon length, model fidelity, and the number of active geometric constraints. Conversely, horizon-free reactive methods are computationally efficient but can be short-sighted in dynamic clutter. We present a task-space receding-horizon controller that uses a short contact-consistent rollout to generate a terminal kinematic reference satisfying internal non-penetration constraints, then computes only the first input of a smooth minimum-acceleration transition toward that reference. Starting from a closed-loop inverse-kinematics regulation law, the rollout is performed with an iterative dynamics solver operating on inflated convex robot and obstacle geometries, so that robot-obstacle contacts, dynamic obstacle motion, and self-collisions can shape the terminal reference without requiring full constrained trajectory optimization. We analyze the contact-inactive closed loop and show local exponential task-space regulation under standard regularity assumptions. For contacts activated inside the rollout, we characterize the corresponding discrete updates and bound the effect of moving obstacles on regular operating sets. Simulations on a 40-DOF multi-chain system show that intermediate horizons balance anticipation, responsiveness, and computational cost. Hardware experiments on a 6-DOF platform demonstrate consistent sim-to-real behavior without accurate inertial parameter estimation, and comparisons against dynamic optimization fabrics and model predictive control (MPC) baselines show improved success rates in dynamic clutter while preserving solve times compatible with real-time execution in the tested regimes.

避障控制机器人滚动优化

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