A surgical simulator for planning and performing repair of cleft lips

被引:69
作者
Schendel, S [1 ]
Montgomery, K
Sorokin, A
Lionetti, G
机构
[1] Stanford Univ, Natl Biocomputat Ctr, Stanford, CA 94305 USA
[2] Stanford Univ, Div Plast & Reconstruct Surg, Stanford, CA 94305 USA
关键词
cleft lip; surgical simulation; soft-tissue deformation; haptics; education;
D O I
10.1016/j.jcms.2005.05.002
中图分类号
R78 [口腔科学];
学科分类号
1003 ;
摘要
The objective of this project was to develop a computer-based surgical simulation system for planning and performing cleft lip repair. This system allows the user to interact with a virtual patient to perform the traditional steps of cleft-lip repair (rotation-advancement technique). Materials and methods: The system interfaces to force-feedback (haptic) devices to track the user's motion and provide feedback during the procedure, while performing real-time soft-tissue simulation. An 11-day-old unilateral cleft lip, alveolus and palate patient was previously CT scanned for ancillary diagnostic purposes using standard imaging protocols and 1 mm slices. High-resolution 3D meshes were automatically generated from this data using the ROVE software developed in-house. The resulting 3D meshes of bone and soft tissue were instilled with physical properties of soft tissues for purposes of simulation. Once these preprocessing steps were completed, the patient's bone and soft tissue data are presented on the computer screen in stereo and the user can freely view, rotate, and otherwise interact with the patient's data in real time. The user is prompted to select anatomical landmarks on the patient's data for preoperative planning purposes, then their locations are compared against that of a 'gold standard' and a score, derived from their deviation from that standard and time required, is generated. The user can then move a haptic stylus and guide the motion of the virtual cutting tool. The soft tissues can thus be incised using this virtual cutting tool, moved using virtual forceps, and fused in order to perform any of the major procedures for cleft lip repair. Real-time soft tissue deformation of the mesh realistically simulates normal tissues and haptic-rate (> 1 kHz) force-feedback is provided. The surgical result of the procedure can then be immediately visualized and the entire training process can be repeated at will. A short evaluation study was also performed. Two groups (non-medical and plastic surgery residents) of six persons each performed the anatomical marking task of the simulator four times. Results: - Results showed that the plastic surgery residents scored consistently better than the persons without medical background. Every person's score increased with practice, and the length of time needed to complete the 11 markings decreased. The data was compiled and showed which specific markers consistently took users the longest to identify as well as which locations were hardest to accurately mark. Conclusion: These findings suggest that the simulator is a valuable training tool, giving residents a way to practice anatomical identification for cleft lip surgery without the risks associated with training on a live patient. Educators can also use the simulator to examine which markers are consistently problematic, and modify their training to address these needs. (c) 2005 European Association for Cranio-Maxillofacial Surgery.
引用
收藏
页码:223 / 228
页数:6
相关论文
共 18 条
[1]   Assessment of technical skills transfer from the bench training model to the human model [J].
Anastakis, DJ ;
Regehr, G ;
Reznick, RK ;
Cusimano, M ;
Murnaghan, J ;
Brown, M ;
Hutchison, C .
AMERICAN JOURNAL OF SURGERY, 1999, 177 (02) :167-170
[2]  
Bholat OS, 1999, ST HEAL T, V62, P62
[3]  
BROWN J, 2001, 4 INT C MED IM COMP
[4]   A hybrid elastic model for real-time cutting, deformations, and force feedback for surgery training and simulation [J].
Cotin, S ;
Delingette, H ;
Ayache, N .
VISUAL COMPUTER, 2000, 16 (08) :437-452
[5]  
CUTTING C, 2005, MED M VIRT REAL MMVR
[6]   Toward realistic soft-tissue modeling in medical simulation [J].
Delingette, H .
PROCEEDINGS OF THE IEEE, 1998, 86 (03) :512-523
[7]  
GARLAND M, 1997, ACM SIGGRAPH 97 C P, P43
[8]  
GORMAN PJ, 1999, MED M VIRT REAL MMVR
[9]   Preoperative planning and intraoperative navigation in skull base surgery [J].
Hassfeld, S ;
Zoller, J ;
Albert, FK ;
Wirtz, CR ;
Knauth, M ;
Muhling, J .
JOURNAL OF CRANIO-MAXILLOFACIAL SURGERY, 1998, 26 (04) :220-225
[10]   COMPUTED-TOMOGRAPHY IN THE PREOPERATIVE PLANNING OF ORAL ENDO-OSSEOUS IMPLANT-SURGERY [J].
LAMORAL, Y ;
QUIRYNEN, M ;
PEENE, P ;
VANNESTE, F ;
LEMAHIEU, SF ;
BAERT, AL ;
VANSTEENBERGHE, D .
FORTSCHRITTE AUF DEM GEBIETE DER RONTGENSTRAHLEN UND DER NEUEN BILDGEBENDEN VERFAHREN, 1990, 153 (05) :505-509