用于抓取和移动任务的机器人手臂-手指系统的分散预设时间控制

Decentralized Prescribed-Time Control of Robotic Arm-Finger Systems for Grasping and Moving Tasks

IEEE Transactions on Cybernetics · 2025
被引 7
ABS 3

中文导读

研究了人形机器人手臂与多手指协调控制问题,提出分散预设时间跟踪策略,确保手指同步抓取并移动物体,通过仿真验证了算法在关节空间的跟踪性能。

Abstract

The control of a humanoid robot equipped with one arm and multiple fingers, designed primarily for grasping and manipulating various objects, is investigated. Synchronizing the movements of the fingers is a challenging task, as each joint must reach the desired angle simultaneously to ensure a firm grasp. The success of this task hinges on the synchronization of convergence times for each finger joint; otherwise, the object may slip or escape. This challenge is further intensified by uncertainties in the dynamics of the hand or the object. We present decentralized prescribed-time tracking control strategies for the dynamical system comprising the arm-finger combination. In this system, the fingers are primarily used for grasping the object while the arm is responsible for moving, tilting, or flipping it. To streamline the controller structure and simplify the stability analysis, we design a linear controller based on the maximum eigenvalue of a parameter matrix and establish a new technical lemma, which paves the way for the stability analysis of the prescribed-time tracking and the reduction of the input efforts of the actuator. We develop robust and decentralized adaptive control schemes separately for the arm and fingers, achieving better transient performance with less prior knowledge and lower computation costs. Finally, we validate the proposed controller's performance through kinematic simulations of grasping and moving tasks in 3-D, alongside numerical simulations that demonstrate the tracking performance of our algorithm in the joint space.

机器人控制人形机器人抓取操作自适应控制