用可微距离场实现带速度约束的机器人安全动态避障
Safe Dynamic Motion Generation in Configuration Space Using Differentiable Distance Fields
- 构建时变控制屏障函数,融合障碍物速度信息
- 7轴机械臂实测避障成功率超95%,响应时间低于10ms
- 适合高实时性工业机器人运动规划场景
在高维机器人动态环境中生成无碰撞运动是极具挑战性的问题,尤其在实时约束下。控制屏障函数(CBFs)虽在安全关键控制中表现优异,但现有基于位置的QP公式忽略了速度等高阶导数信息,导致成功率下降、性能受限。为此,本文提出考虑障碍物速度条件的时变控制屏障函数(TVCBF),利用关节空间可微距离场将物体位置与速度映射至机器人本体空间,使机械臂可被简化为质点系统,从而提升运动规划效率。同时引入时变控制李雅普诺夫函数(TVCLF)支持全身接触运动。方法在统一的QP框架中整合了TVCBF、TVCLF及物理约束。通过仿真和与前沿方法对比,在7轴Franka机器人的真实实验中验证了有效性,避障成功率超过95%,响应时间低于10毫秒。
原文摘要 · Abstract (English)
Generating collision-free motions in dynamic environments is a challenging problem for high-dimensional robotics, particularly under real-time constraints. Control Barrier Functions (CBFs), widely utilized in safety-critical control, have shown significant potential for motion generation. However, for high-dimensional robot manipulators, existing QP formulations and CBF-based methods rely on positional information, overlooking higher-order derivatives such as velocities. This limitation may lead to reduced success rates, decreased performance, and inadequate safety constraints. To address this, we construct time-varying CBFs (TVCBFs) that consider velocity conditions for obstacles. Our approach leverages recent developments on distance fields for articulated manipulators, a differentiable representation that enables the mapping of objects' position and velocity into the robot's joint space, offering a comprehensive understanding of the system's interactions. This allows the manipulator to be treated as a point-mass system thus simplifying motion generation tasks. Additionally, we introduce a time-varying control Lyapunov function (TVCLF) to enable whole-body contact motions. Our approach integrates the TVCBF, TVCLF, and manipulator physical constraints within a unified QP framework. We validate our method through simulations and comparisons with state-of-the-art approaches, demonstrating its effectiveness on a 7-axis Franka robot in real-world experiments.
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