Data-Driven Model Predictive Control for Path Following and Terminal Force Control of Robotic Manipulators
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摘要
This paper presents a data-driven model predictive control scheme for the path following and terminal force control of manipulators. The nonlinear characteristics of manipulators are approximated using Koopman operator theory, yielding a ``global'' linear model. Additionally,   a virtual dynamics of force is added to the involved optimization problem, which represents the dynamic relationship between the end position and the contact force.  The terminal constraint set is derived by calculating the maximal robust positive invariant set of the linear system. Simulation results validate the effectiveness of the proposed control strategy, demonstrating its ability to achieve both high-precision path tracking and accurate force regulation for robotic manipulators.
关键词
Manipulators, path following, Koopman operator, model predictive control, terminal constraint set
报告人
Shuyou Yu
Professor Jilin University

稿件作者
Shuo Wang Jilin university
Shuyou Yu Jilin University
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重要日期
  • 会议日期

    06月05日

    2025

    06月08日

    2025

  • 04月30日 2025

    初稿截稿日期

主办单位
IEEE PELS
IEEE
承办单位
Southeast University
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