English

A Hybrid-Layered System for Image-Guided Navigation and Robot Assisted Spine Surgery

Robotics 2024-06-10 v1 Systems and Control Systems and Control

Abstract

In response to the growing demand for precise and affordable solutions for Image-Guided Spine Surgery (IGSS), this paper presents a comprehensive development of a Robot-Assisted and Navigation-Guided IGSS System. The endeavor involves integrating cutting-edge technologies to attain the required surgical precision and limit user radiation exposure, thereby addressing the limitations of manual surgical methods. We propose an IGSS workflow and system architecture employing a hybrid-layered approach, combining modular and integrated system architectures in distinctive layers to develop an affordable system for seamless integration, scalability, and reconfigurability. We developed and integrated the system and extensively tested it on phantoms and cadavers. The proposed system's accuracy using navigation guidance is 1.020 mm, and robot assistance is 1.11 mm on phantoms. Observing a similar performance in cadaveric validation where 84% of screw placements were grade A, 10% were grade B using navigation guidance, 90% were grade A, and 10% were grade B using robot assistance as per the Gertzbein-Robbins scale, proving its efficacy for an IGSS. The evaluated performance is adequate for an IGSS and at par with the existing systems in literature and those commercially available. The user radiation is lower than in the literature, given that the system requires only an average of 3 C-Arm images per pedicle screw placement and verification

Keywords

Cite

@article{arxiv.2406.04644,
  title  = {A Hybrid-Layered System for Image-Guided Navigation and Robot Assisted Spine Surgery},
  author = {Suhail Ansari T and Vivek Maik and Minhas Naheem and Keerthi Ram and Manojkumar Lakshmanan and Mohanasankar Sivaprakasam},
  journal= {arXiv preprint arXiv:2406.04644},
  year   = {2024}
}

Comments

6 Pages, 4 Figures, Published in IEEE SII Conference

R2 v1 2026-06-28T16:56:49.990Z