An Optical Tracking‐Based Robot‐Assisted System for Spinal Fixation Rod Bending

BACKGROUND: In spinal pedicle screw-rod fixation, rod contouring quality influences insertion ease, construct stability, and corrective effect. Conventional bending relies on surgeon experience and is limited by insufficient support, repeated adjustment, and inefficient workflow. METHODS: This study developed a tracking-based robot-assisted system for rod bending comprising an acquisition unit, software, and actuator. The system acquires screw-head coordinates, generates target rod shape, and discretises the curve into bending positions, axial rotations, and angles. RESULTS: In five in vitro experiments, five assisted-versus-manual comparisons, and twenty paired cases, planned rods showed high consistency with target curves, with mean angle, rotation, and length errors within acceptable ranges. Assisted bending improved efficiency and reduced placement errors versus manual bending; clinically, the assisted side had a shorter operation time. CONCLUSIONS: The system achieves a workflow from acquisition to rod formation, improving quantifiability, consistency, efficiency, and conformity, thus providing a pathway towards automated spinal rod shaping.

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Publication Details

Journal
International Journal of Medical Robotics and Computer Assisted Surgery
Published
2026-09-12
DOI
https://doi.org/10.1002/rcs.70233
Primary Topic
Spinal Fractures and Fixation Techniques
Type
article
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article

An Optical Tracking‐Based Robot‐Assisted System for Spinal Fixation Rod Bending

Xingguang Duan, Weijun Zhang, Changsheng Li, Xingye Li et al.
International Journal of Medical Robotics and Computer Assisted Surgery
Spinal Fractures and Fixation Techniques
article

An Optical Tracking‐Based Robot‐Assisted System for Spinal Fixation Rod Bending

Xingguang Duan, Weijun Zhang, Changsheng Li, Xingye Li, Yaohui Huang
article en

Abstract

BACKGROUND: In spinal pedicle screw-rod fixation, rod contouring quality influences insertion ease, construct stability, and corrective effect. Conventional bending relies on surgeon experience and is limited by insufficient support, repeated adjustment, and inefficient workflow. METHODS: This study developed a tracking-based robot-assisted system for rod bending comprising an acquisition unit, software, and actuator. The system acquires screw-head coordinates, generates target rod shape, and discretises the curve into bending positions, axial rotations, and angles. RESULTS: In five in vitro experiments, five assisted-versus-manual comparisons, and twenty paired cases, planned rods showed high consistency with target curves, with mean angle, rotation, and length errors within acceptable ranges. Assisted bending improved efficiency and reduced placement errors versus manual bending; clinically, the assisted side had a shorter operation time. CONCLUSIONS: The system achieves a workflow from acquisition to rod formation, improving quantifiability, consistency, efficiency, and conformity, thus providing a pathway towards automated spinal rod shaping.

International Journal of Medical Robotics and Computer Assisted SurgeryVol. 22(5)
Beijing Institute of Technology (CN), Peking University (CN), Beijing Jishuitan Hospital (CN), Zhuhai Institute of Advanced Technology (CN)
Openalex Percentile: Top 8%
Spinal Fractures and Fixation Techniques
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An Optical Tracking‐Based Robot‐Assisted System for Spinal Fixation Rod Bending — Xingguang Duan, Weijun Zhang, et al. · International Journal of Medical Robotics and Computer Assisted Surgery (2026) | TGRS Research Map | TGRS