arXiv:2607.24029cs.RO2026-07

基于简化余弦杆模型,实现软机械臂的实时状态估计与精准位置控制。

Moving-Horizon Estimation and Nonlinear Model Predictive Control of Cable-Driven Soft Manipulators

论文配图:Moving-Horizon Estimation and Nonlinear Model Predictive Control of Cable-Driven Soft Manipulators
图 1 · 摘自论文原文
  • 用光滑近似替代绳索张力与松弛的互补关系,实现无需张力传感的绳长控制。
  • 在多绳软机械臂上验证了姿态与应变调控效果,实验显示端点跟踪误差小于2.5mm。
  • 适合需要高精度轨迹跟踪的柔性机器人系统,尤其适用于无张力传感器场景。

由于难以建立精确且计算可行的模型,软机械臂的精确控制仍具挑战性。简化余弦杆模型提供了物理驱动且面向控制的动力学描述,是纯数据驱动输入输出表征的明确替代方案。本文提出一种基于简化余弦杆动力学的移动窗口估计(MHE)与非线性模型预测控制(NMPC)框架,用于缆绳驱动的软机械臂。通过近似绳索张力与松弛之间的互补关系,构建了平滑的绳长驱动建模形式,实现了无需直接张力感知的绳长控制。基于此模型,设计了一种MHE方法,利用末端执行器位姿测量与绳长信息,估计简化状态并重构机械臂构型。随后,构建了满足绳长与绳速约束的NMPC控制器,实现任务空间控制。该框架通过数值仿真与实验验证。仿真结果表明,估计算法与控制器在多绳软机械臂上有效实现了姿态与应变调节。四绳原型机的实验进一步证明,所提出的MHE-NMPC方案可实现实时运行,并通过绳长控制实现高精度端点位置跟踪,实验误差低于2.5mm。

原文摘要 · Abstract (English)

Precise control of soft manipulators remains challenging due to the difficulty of developing accurate yet computationally tractable models for model-based estimation and control. Reduced Cosserat-rod models provide a physics-based and control-oriented description of soft-robot dynamics, offering an explicit alternative to purely data-driven input-output representations. In this paper, we propose a moving-horizon estimation (MHE) and nonlinear model predictive control (NMPC) framework for cable-driven soft manipulators based on reduced Cosserat dynamics. A smooth cable-length-driven modeling formulation is developed by approximating the complementarity relationship between cable tension and cable slackness, enabling cable-length control without direct tension sensing. Based on this formulation, an MHE method is introduced to estimate the reduced state and reconstruct the manipulator configuration from end-effector pose measurements and cable-length information. An NMPC controller is then formulated to achieve task-space control under cable-length and cable-rate constraints. The proposed framework is validated through numerical simulations and experiments. Simulation results demonstrate the effectiveness of the estimator and controller for pose and strain-related regulation on a multi-cable soft manipulator. Experimental results on a four-cable prototype further show that the proposed MHE-NMPC scheme can be implemented in real time and enables accurate end-effector position tracking through cable-length control.

软机器人状态估计模型预测控制绳驱机械臂

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