Skip to main content
Top
Published in: Maxillofacial Plastic and Reconstructive Surgery 1/2016

Open Access 01-12-2016 | Methodology

Mixed-reality simulation for orthognathic surgery

Authors: Kenji Fushima, Masaru Kobayashi

Published in: Maxillofacial Plastic and Reconstructive Surgery | Issue 1/2016

Login to get access

Abstract

Background

Mandibular motion tracking system (ManMoS) has been developed for orthognathic surgery. This article aimed to introduce the ManMoS and to examine the accuracy of this system.

Methods

Skeletal and dental models are reconstructed in a virtual space from the DICOM data of three-dimensional computed tomography (3D-CT) recording and the STL data of 3D scanning, respectively. The ManMoS uniquely integrates the virtual dento-skeletal model with the real motion of the dental cast mounted on the simulator, using the reference splint. Positional change of the dental cast is tracked by using the 3D motion tracking equipment and reflects on the jaw position of the virtual model in real time, generating the mixed-reality surgical simulation. ManMoS was applied for two clinical cases having a facial asymmetry. In order to assess the accuracy of the ManMoS, the positional change of the lower dental arch was compared between the virtual and real models.

Results

With the measurement data of the real lower dental cast as a reference, measurement error for the whole simulation system was less than 0.32 mm. In ManMoS, the skeletal and dental asymmetries were adequately diagnosed in three dimensions. Jaw repositioning was simulated with priority given to the skeletal correction rather than the occlusal correction. In two cases, facial asymmetry was successfully improved while a normal occlusal relationship was reconstructed. Positional change measured in the virtual model did not differ significantly from that in the real model.

Conclusions

It was suggested that the accuracy of the ManMoS was good enough for a clinical use. This surgical simulation system appears to meet clinical demands well and is an important facilitator of communication between orthodontists and surgeons.
Literature
1.
go back to reference Proffit WR, Turvey TA (2003) Dentofacial asymmetry. In: Proffit WR (ed) Contemporary treatment of dentofacial deformity, vol 1. Mosby, St. Louis, pp 574–644 Proffit WR, Turvey TA (2003) Dentofacial asymmetry. In: Proffit WR (ed) Contemporary treatment of dentofacial deformity, vol 1. Mosby, St. Louis, pp 574–644
2.
go back to reference Tsurumi F, Takagi H, Fushima K (2000) A multivariate analysis for classification of craniofacial morphology in facial asymmetry. Bull Kanagawa Dent Col 28:15–27 Tsurumi F, Takagi H, Fushima K (2000) A multivariate analysis for classification of craniofacial morphology in facial asymmetry. Bull Kanagawa Dent Col 28:15–27
3.
go back to reference Saito N, Kobayashi M, Fushima K (2009) Skeletal and dental asymmetry in orthognathic case in Japan. Bull Kanagawa Dent Col 37:19–30 Saito N, Kobayashi M, Fushima K (2009) Skeletal and dental asymmetry in orthognathic case in Japan. Bull Kanagawa Dent Col 37:19–30
4.
go back to reference Fushima K, Odaira Y, Saito N, Tsurumi F, Sato S (1998) Dental asymmetry in facial asymmetry. Bull Kanagawa Dent Col 26:15–21 Fushima K, Odaira Y, Saito N, Tsurumi F, Sato S (1998) Dental asymmetry in facial asymmetry. Bull Kanagawa Dent Col 26:15–21
5.
go back to reference Minaguchi K, Fushima K, Kobayashi M (2007) Measurement error in a newly developed mandibular motion tracking system. Bull Kanagawa Dent Col 35:129–137 Minaguchi K, Fushima K, Kobayashi M (2007) Measurement error in a newly developed mandibular motion tracking system. Bull Kanagawa Dent Col 35:129–137
6.
go back to reference Fushima K, Kobayashi M, Konishi H, Minagichi K, Fukuchi T (2007) Real-time orthognathic surgical simulation using a mandibular motion tracking system. Comput Aided Surg 12(2):91–104CrossRefPubMed Fushima K, Kobayashi M, Konishi H, Minagichi K, Fukuchi T (2007) Real-time orthognathic surgical simulation using a mandibular motion tracking system. Comput Aided Surg 12(2):91–104CrossRefPubMed
7.
go back to reference Sinclair PM, Thomas PM, Tucker MR (1992) Common complications in orthogonathic surgery: etiology and management. In: Bell WH (ed) Modern practice in orthognathic and reconstructive surgery, vol 1. WBSaunders, Philadelphia, pp 48–83 Sinclair PM, Thomas PM, Tucker MR (1992) Common complications in orthogonathic surgery: etiology and management. In: Bell WH (ed) Modern practice in orthognathic and reconstructive surgery, vol 1. WBSaunders, Philadelphia, pp 48–83
8.
go back to reference Arnett GW, Tamborello JA, Rathbone JA (1992) Temporomandibular joint ramifications of orthognathic surgery. In: Bell WH (ed) Modern practice in orthognathic and reconstructive surgery, vol 1. WB Saunders, Philadelphia, pp 522–593 Arnett GW, Tamborello JA, Rathbone JA (1992) Temporomandibular joint ramifications of orthognathic surgery. In: Bell WH (ed) Modern practice in orthognathic and reconstructive surgery, vol 1. WB Saunders, Philadelphia, pp 522–593
Metadata
Title
Mixed-reality simulation for orthognathic surgery
Authors
Kenji Fushima
Masaru Kobayashi
Publication date
01-12-2016
Publisher
Springer Berlin Heidelberg
Published in
Maxillofacial Plastic and Reconstructive Surgery / Issue 1/2016
Electronic ISSN: 2288-8586
DOI
https://doi.org/10.1186/s40902-016-0059-z

Other articles of this Issue 1/2016

Maxillofacial Plastic and Reconstructive Surgery 1/2016 Go to the issue