激光跟踪器
校准
运动学
机器人
计算机科学
补偿(心理学)
机器人运动学
移动机器人
机器人校准
工作区
可靠性(半导体)
测量不确定度
航空航天
点(几何)
工程类
执行机构
观测误差
控制理论(社会学)
控制工程
跟踪(教育)
模拟
差速器(机械装置)
平面的
弹道
差分GPS
抓住
补偿方式
坐标系
工业机器人
运动规划
计算机视觉
跟踪误差
作者
Kangyong Yang,Dailin Zhang,Xingwei Zhao,Zhiran Zhang,Xiyang Liu,Chenhan Wang,Tao Wang,Bo Tao
标识
DOI:10.1109/tim.2026.3659684
摘要
Accurate calibration is crucial for improving the performance of composite mobile robots in large-scale assembly tasks. In this article, we propose a low-cost mirror-based self-calibration method designed to achieve high-accuracy calibration without the need for external measurement equipment. The proposed method simultaneously enables tool center point (TCP) calibration, hand-eye calibration, and mobile platform-arm calibration using reflective measurements from a planar mirror. A novel measurement strategy is introduced, which overcomes the limitations of traditional contact-based methods and addresses scenarios lacking well-defined reference points. Furthermore, an error compensation strategy based on differential kinematics is proposed to mitigate the effects of robot kinematic error and positioning errors. Unlike conventional calibration methods that rely on laser trackers or coordinate measuring machines, the proposed approach eliminates the need for additional instrumentation, offering a new, cost-effective measurement solution. Simulation and experimental results demonstrate an assembly accuracy of 0.212 mm, which meets the aerospace requirement of ≤0.300 mm for high-lock nut assemblies, ensuring reliability in aircraft panel manufacturing.
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