用线性离散屏障函数实现人形机器人实时安全行走
Real-Time Safe Bipedal Robot Navigation using Linear Discrete Control Barrier Functions
- 基于线性倒立摆模型与离散屏障函数统一规划路径与步态
- 在随机障碍环境中实现毫秒级响应,保持稳定行走
- 适合需要实时避障的复杂场景人形机器人部署
真实世界中人形机器人的实时安全导航至关重要。由于人形机器人受单侧地面接触影响,路径安全需同时满足无障碍和符合物理约束与动力学特性。现有方法常因全阶动力学计算量大而将路径规划与步态控制解耦。本文提出一种可在线实时评估的统一安全路径与步态规划框架,使机器人在密集环境中实现稳定行走。采用主流线性倒立摆(LIP)模型表征行走动力学,并引入航向角以准确评估物理可行步态的运动学约束。通过离散控制屏障函数(DCBF)实现障碍物避让,确保后续落脚点在复杂环境中的安全性。为保证实时性,提出一种新近似方法生成线性DCBF(LDCBF)约束。在数字机器人(Digit)的仿真中验证,结果表明该方法可在随机生成的障碍环境中实时生成安全步态。
原文摘要 · Abstract (English)
Safe navigation in real-time is an essential task for humanoid robots in real-world deployment. Since humanoid robots are inherently underactuated thanks to unilateral ground contacts, a path is considered safe if it is obstacle-free and respects the robot's physical limitations and underlying dynamics. Existing approaches often decouple path planning from gait control due to the significant computational challenge caused by the full-order robot dynamics. In this work, we develop a unified, safe path and gait planning framework that can be evaluated online in real-time, allowing the robot to navigate clustered environments while sustaining stable locomotion. Our approach uses the popular Linear Inverted Pendulum (LIP) model as a template model to represent walking dynamics. It incorporates heading angles in the model to evaluate kinematic constraints essential for physically feasible gaits properly. In addition, we leverage discrete control barrier functions (DCBF) for obstacle avoidance, ensuring that the subsequent foot placement provides a safe navigation path within clustered environments. To guarantee real-time computation, we use a novel approximation of the DCBF to produce linear DCBF (LDCBF) constraints. We validate the proposed approach in simulation using a Digit robot in randomly generated environments. The results demonstrate that our approach can generate safe gaits for a non-trivial humanoid robot to navigate environments with randomly generated obstacles in real-time.
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