Literature DB >> 26577713

Patient-specific geometrical modeling of orthopedic structures with high efficiency and accuracy for finite element modeling and 3D printing.

Huajun Huang1, Chunling Xiang2, Canjun Zeng3,4, Hanbin Ouyang4, Kelvin Kian Loong Wong5, Wenhua Huang6.   

Abstract

We improved the geometrical modeling procedure for fast and accurate reconstruction of orthopedic structures. This procedure consists of medical image segmentation, three-dimensional geometrical reconstruction, and assignment of material properties. The patient-specific orthopedic structures reconstructed by this improved procedure can be used in the virtual surgical planning, 3D printing of real orthopedic structures and finite element analysis. A conventional modeling consists of: image segmentation, geometrical reconstruction, mesh generation, and assignment of material properties. The present study modified the conventional method to enhance software operating procedures. Patient's CT images of different bones were acquired and subsequently reconstructed to give models. The reconstruction procedures were three-dimensional image segmentation, modification of the edge length and quantity of meshes, and the assignment of material properties according to the intensity of gravy value. We compared the performance of our procedures to the conventional procedures modeling in terms of software operating time, success rate and mesh quality. Our proposed framework has the following improvements in the geometrical modeling: (1) processing time: (femur: 87.16 ± 5.90 %; pelvis: 80.16 ± 7.67 %; thoracic vertebra: 17.81 ± 4.36 %; P < 0.05); (2) least volume reduction (femur: 0.26 ± 0.06 %; pelvis: 0.70 ± 0.47, thoracic vertebra: 3.70 ± 1.75 %; P < 0.01) and (3) mesh quality in terms of aspect ratio (femur: 8.00 ± 7.38 %; pelvis: 17.70 ± 9.82 %; thoracic vertebra: 13.93 ± 9.79 %; P < 0.05) and maximum angle (femur: 4.90 ± 5.28 %; pelvis: 17.20 ± 19.29 %; thoracic vertebra: 3.86 ± 3.82 %; P < 0.05). Our proposed patient-specific geometrical modeling requires less operating time and workload, but the orthopedic structures were generated at a higher rate of success as compared with the conventional method. It is expected to benefit the surgical planning of orthopedic structures with less operating time and high accuracy of modeling.

Entities:  

Keywords:  Digitalization; Image segmentation; Medical imaging; Mesh quality; Orthopedic reconstruction

Mesh:

Year:  2015        PMID: 26577713     DOI: 10.1007/s13246-015-0402-1

Source DB:  PubMed          Journal:  Australas Phys Eng Sci Med        ISSN: 0158-9938            Impact factor:   1.430


  2 in total

Review 1.  [Kinematic examination of the musculoskeletal system : Use of methods of image and image sequence analyses as well as shape and motion models].

Authors:  S Landgraeber; J Pauli
Journal:  Orthopade       Date:  2018-10       Impact factor: 1.087

2.  Finite Element Analysis of Proximal Femur Bionic Nail (PFBN) Compared with Proximal Femoral Nail Antirotation and InterTan in Treatment of Intertrochanteric Fractures.

Authors:  Yanhua Wang; Wei Chen; Lijia Zhang; Chen Xiong; Xiaomeng Zhang; Kai Yu; Jiabao Ju; Xiaofeng Chen; Dianying Zhang; Yingze Zhang
Journal:  Orthop Surg       Date:  2022-07-18       Impact factor: 2.279

  2 in total

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