English

A Model-Based Decoupling Strategy for Proprioception and Contact Sensing in an Architected Soft Manipulator

Robotics 2026-07-17 v1

Abstract

Soft continuum robots require embedded sensing for proprioception and contact detection, yet integrating sensors into sparse, highly deformable architected structures remains challenging. We present a model-based strategy that decouples proprioceptive and contact signals from a common set of fluidic pressure sensors embedded in a soft architected segment. Each segment of the Innervated Trimmed Helicoid (ITH) contains six air channels routed in a localized zigzag pattern along the circumference. With only three principal kinematic degrees of freedom (axial compression, bending in x, bending in y), the six pressure readings form an overdetermined system. A piecewise constant curvature model maps pressures to shape, and Huber regression identifies outlier channels whose residuals indicate external contact. On a single ITH segment, this approach achieves proprioceptive shape estimation with a relative bending error of 0.11 +/- 0.02 and a contact detection rate of 97% across 178 trials. We integrate eight ITH segments into Air-Helix, a tendon-driven soft continuum manipulator, and present exploratory whole-arm demonstrations that include tactile teaching by demonstration, admittance-controlled force regulation, and tactile object reconstruction. The results suggest that localized fluidic innervation combined with model-based redundancy resolution is a practical path toward concurrent proprioception and contact sensing in architected soft robots.

Cite

@article{arxiv.2607.15582,
  title  = {A Model-Based Decoupling Strategy for Proprioception and Contact Sensing in an Architected Soft Manipulator},
  author = {Francesco Stella and Annan Zhang and Cosimo Della Santina and Josie Hughes and Daniela Rus},
  journal= {arXiv preprint arXiv:2607.15582},
  year   = {2026}
}

Comments

Accepted for publication in the proceedings of the 2026 IEEE/RSJ International Conference on Intelligent Robots and Systems (IROS)