English

Sliding Sensors: Configurable Confidence in State Estimation for Continuum Robots

Robotics 2026-08-05 v1

Abstract

Continuum robots often operate in uncertain environments, where accurate state estimation is essential for safe interactions. Estimate uncertainty is inherently spatially non-uniform: confidence varies depending on where measurements are available. Global estimation accuracy is not always the top priority, but rather achieving sufficient confidence at task-relevant locations along the robot. This extended abstract introduces mechanically reconfigurable sensing enabling uncertainty-shaping in state estimation for continuum robots. We present a concept hardware design demonstrating the feasibility of longitudinal translation of a sensor within a continuum robot. We demonstrate that state estimation confidence can be reconfigured by varying the sensor location, and show a reduction of full-body shape estimation errors when sliding the sensor back and forth over time, compared to a single fixed tip sensor.

Keywords

Cite

@article{arxiv.2608.05410,
  title  = {Sliding Sensors: Configurable Confidence in State Estimation for Continuum Robots},
  author = {Ella Walsh and Spencer Teetaert and Eric Diller and Timothy D. Barfoot and Jessica Burgner-Kahrs},
  journal= {arXiv preprint arXiv:2608.05410},
  year   = {2026}
}

Comments

Accepted as an extended abstract at 2026 IEEE 9th International Conference on Soft Robotics (RoboSoft). * Equal contribution