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Development and Validation of a Computer-Assisted Screw Trajectory Planning Model Based on Iterative Closest Point Registration and Weighted K-Nearest Neighbors Algorithms for Cortical Bone and Pedicle Screw Techniques.

Created on 04 Sep 2026

Authors

Abudusalamu Tuoheti, Gufuding, Musitapa Mijiti, Jitao Yang, Hali Habulihan, Awuzhaer Abuliken, Yilixiati Mamuti, Paerhati Rexiti

Published in

Global spine journal. Pages 21925682261485860. Sep 04, 2026. Epub Sep 04, 2026.

Abstract

Study DesignRetrospective study.ObjectivesTo develop and validate a computer-assisted model for planning screw trajectories to support modified cortical bone trajectory (MCBT), cortical bone trajectory (CBT), and pedicle screw (PS) techniques, based on iterative closest point (ICP) registration and weighted k-nearest neighbors (kNN) algorithms.MethodsCT data from 110 patients undergoing lumbar surgery were analyzed, comprising an internal set of 50 younger patients with normal bone density and an external set of 60 patients including younger and older individuals with or without bone loss. L4-L5 segments were reconstructed using Mimics 21.0. Two surgeons manually planned MCBT, CBT, and PS trajectories bilaterally in the internal set to serve as reference standards. A personalized computer-assisted screw planning model was developed using ICP registration and weighted kNN, where the template library consisted of manually generated screw plans. Accuracy was evaluated by comparing algorithm-generated screw trajectories against expert manually planned trajectories to calculate deviations in sagittal inclination (α), axial inclination (β), screw head, pedicle entry point, pedicle crossing point, and screw tip. Hounsfield unit (HU) values along screw trajectories were also measured.ResultsIn the external set (total of 720 screws: 240 PS, 240 CBT, 240 MCBT), deviations for CBT weresagittal inclination (α) 4.117 (2.028, 7.251)°, axial inclination (β) 3.714 (1.901, 6.316)°, screw head 3.382 (2.514, 4.803) mm, pedicle entry point 3.0 (1.999, 4.149) mm, pedicle crossing point 1.511 (1.008, 2.443) mm, screw tip 3.586 (2.465, 4.542) mm. Those for MCBT were 4.865 (2.126, 7.547)°, 3.801 (1.658, 6.147)°, 4.153 (3.14, 5.658) mm, 3.818 (2.43, 6.209) mm, 1.545 (1.061, 2.222) mm, 3.777 (2.768, 5.241) mm, respectively. Computational acceptance rates for PS were 97.06% (HU: 238.4±67.71) in younger normal bone group, 92.71% (173.6±53.83) in older normal bone group, and 97.37% (113.3±58.68) in older bone loss group. For CBT, rates were 100% (477.2±168.6 HU), 100% (338.5±125.8 HU), and 100% (178.1±99.75 HU), respectively. For MCBT, rates were 100% (475.8±131 HU), 98.96% (376.8±104.9 HU), and 97.37% (213.4±106 HU), respectively. MCBT and CBT achieved significantly higher HU values than PS (P < 0.05).ConclusionThe ICP registration and weighted kNN-based planning model demonstrates high computational acceptance rates and excels in planning cortical bone screw trajectories with low breach rates and high HU values.

PMID:
42694008
Bibliographic data and abstract were imported from PubMed on 04 Sep 2026.

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