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同时切割四面体和三角化网格及其在轨道重建中的应用。

Simultaneous cutting of coupled tetrahedral and triangulated meshes and its application in orbital reconstruction.

机构信息

Department of Craniomaxillofacial Surgery, University Hospital Freiburg, Freiburg, Germany.

出版信息

Int J Comput Assist Radiol Surg. 2009 Sep;4(5):409-16. doi: 10.1007/s11548-009-0353-7. Epub 2009 Jun 4.

Abstract

INTRODUCTION

Recently, advances in imaging techniques for diagnostics and associated technologies have led to an improved preoperative planning for craniomaxillofacial surgeons. In particular, the application of navigation-aided procedures for orbital reconstruction has proved to be essential. Preforming orbital implants for orbital floor reconstruction and determining overcorrection with regard to the orbital floor reconstruction could be achieved using preoperative planning. It has turned out that the computation of soft tissue cuts is an essential prerequisite for the realistic placement of implants.

METHODS

We propose a simulation framework that allows for the static and dynamic cutting of soft and hard tissue representations. The framework comprises components to model tissue deformation, cutting of tissue and interaction between the physical bodies. Furthermore, volume and surface representations are decoupled which allows for an independent scaling in the complexity of the representations and, therefore, in the simulation and visualisation performance. In contrast to many other cutting approaches, our algorithm handles both representations simultaneously.

CONCLUSION

The framework is used to simulate the realistic insertion of a preformed orbital implant model through the soft tissue cut and the prediction of the postoperative eye bulb position. Experiments show that the framework can be used to determine overcorrection and to preform orbital implants.

摘要

简介

最近,影像学诊断技术及相关技术的进步使得颅颌面外科医生的术前规划得到了改善。特别是导航辅助手术在眼眶重建中的应用被证明是至关重要的。术前规划可用于眼眶底重建的眶内植入物和确定眶底重建的过矫正。事实证明,软组织切割的计算是实现植入物逼真放置的必要前提。

方法

我们提出了一个模拟框架,允许对软硬组织表示进行静态和动态切割。该框架包括用于模拟组织变形、组织切割和物理体之间相互作用的组件。此外,体积和表面表示是解耦的,这允许在表示的复杂性以及模拟和可视化性能方面进行独立的缩放。与许多其他切割方法不同,我们的算法同时处理两种表示。

结论

该框架用于模拟通过软组织切割实现预制眼眶植入物模型的真实插入,并预测术后眼球位置。实验表明,该框架可用于确定过矫正和预制眼眶植入物。

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