English

Shape control of simulated multi-segment continuum robots via Koopman operators with per-segment projection

Robotics 2025-09-16 v1

Abstract

Soft continuum robots can allow for biocompatible yet compliant motions, such as the ability of octopus arms to swim, crawl, and manipulate objects. However, current state-of-the-art continuum robots can only achieve real-time task-space control (i.e., tip control) but not whole-shape control, mainly due to the high computational cost from its infinite degrees of freedom. In this paper, we present a data-driven Koopman operator-based approach for the shape control of simulated multi-segment tendon-driven soft continuum robots with the Kirchhoff rod model. Using data collected from these simulated soft robots, we conduct a per-segment projection scheme on the state of the robots allowing for the identification of control-affine Koopman models that are an order of magnitude more accurate than without the projection scheme. Using these learned Koopman models, we use a linear model predictive control (MPC) to control the robots to a collection of target shapes of varying complexity. Our method realizes computationally efficient closed-loop control, and demonstrates the feasibility of real-time shape control for soft robots. We envision this work can pave the way for practical shape control of soft continuum robots.

Keywords

Cite

@article{arxiv.2509.11567,
  title  = {Shape control of simulated multi-segment continuum robots via Koopman operators with per-segment projection},
  author = {Eron Ristich and Jiahe Wang and Lei Zhang and Sultan Haidar Ali and Wanxin Jin and Yi Ren and Jiefeng Sun},
  journal= {arXiv preprint arXiv:2509.11567},
  year   = {2025}
}

Comments

7 pages (+2 pages of references), 8 figures

R2 v1 2026-07-01T05:36:06.610Z