English

A Master-Follower Teleoperation System for Robotic Catheterization: Design, Characterization, and Tracking Control

Robotics 2025-02-18 v2 Computer Vision and Pattern Recognition Systems and Control Systems and Control

Abstract

Minimally invasive robotic surgery has gained significant attention over the past two decades. Telerobotic systems, combined with robot-mediated minimally invasive techniques, have enabled surgeons and clinicians to mitigate radiation exposure for medical staff and extend medical services to remote and hard-to-reach areas. To enhance these services, teleoperated robotic surgery systems incorporating master and follower devices should offer transparency, enabling surgeons and clinicians to remotely experience a force interaction similar to the one the follower device experiences with patients' bodies. This paper presents the design and development of a three-degree-of-freedom master-follower teleoperated system for robotic catheterization. To resemble manual intervention by clinicians, the follower device features a grip-insert-release mechanism to eliminate catheter buckling and torsion during operation. The bidirectionally navigable ablation catheter is statically characterized for force-interactive medical interventions. The system's performance is evaluated through approaching and open-loop path tracking over typical circular, infinity-like, and spiral paths. Path tracking errors are presented as mean Euclidean error (MEE) and mean absolute error (MAE). The MEE ranges from 0.64 cm (infinity-like path) to 1.53 cm (spiral path). The MAE also ranges from 0.81 cm (infinity-like path) to 1.92 cm (spiral path). The results indicate that while the system's precision and accuracy with an open-loop controller meet the design targets, closed-loop controllers are necessary to address the catheter's hysteresis and dead zone, and system nonlinearities.

Keywords

Cite

@article{arxiv.2407.13162,
  title  = {A Master-Follower Teleoperation System for Robotic Catheterization: Design, Characterization, and Tracking Control},
  author = {Ali A. Nazari and Jeremy Catania and Soroush Sadeghian and Amir Jalali and Houman Masnavi and Farrokh Janabi-Sharifi and Kourosh Zareinia},
  journal= {arXiv preprint arXiv:2407.13162},
  year   = {2025}
}

Comments

29 pages, 12 figures, 6 tables

R2 v1 2026-06-28T17:45:27.576Z