Soft-tissue Driven Craniomaxillofacial Surgical Planning

Xi Fang, Daeseung Kim, Xuanang Xu, Tianshu Kuang, Nathan Lampen, Jungwook Lee, H. Deng, J. Gateno, M. Liebschner, J. Xia, Pingkun Yan
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Abstract

In CMF surgery, the planning of bony movement to achieve a desired facial outcome is a challenging task. Current bone driven approaches focus on normalizing the bone with the expectation that the facial appearance will be corrected accordingly. However, due to the complex non-linear relationship between bony structure and facial soft-tissue, such bone-driven methods are insufficient to correct facial deformities. Despite efforts to simulate facial changes resulting from bony movement, surgical planning still relies on iterative revisions and educated guesses. To address these issues, we propose a soft-tissue driven framework that can automatically create and verify surgical plans. Our framework consists of a bony planner network that estimates the bony movements required to achieve the desired facial outcome and a facial simulator network that can simulate the possible facial changes resulting from the estimated bony movement plans. By combining these two models, we can verify and determine the final bony movement required for planning. The proposed framework was evaluated using a clinical dataset, and our experimental results demonstrate that the soft-tissue driven approach greatly improves the accuracy and efficacy of surgical planning when compared to the conventional bone-driven approach.
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软组织驱动颅颌面外科手术计划
在CMF手术中,规划骨骼运动以达到理想的面部结果是一项具有挑战性的任务。目前骨骼驱动的方法侧重于使骨骼正常化,并期望面部外观得到相应的纠正。然而,由于骨结构与面部软组织之间复杂的非线性关系,这种骨驱动的方法不足以矫正面部畸形。尽管努力模拟由骨骼运动引起的面部变化,但手术计划仍然依赖于反复修改和有根据的猜测。为了解决这些问题,我们提出了一个软组织驱动的框架,可以自动创建和验证手术计划。我们的框架包括一个骨骼计划器网络,用于估计实现预期面部结果所需的骨骼运动,以及一个面部模拟器网络,可以模拟由估计的骨骼运动计划引起的可能的面部变化。通过结合这两个模型,我们可以验证并确定规划所需的最终骨运动。我们使用临床数据集对所提出的框架进行了评估,实验结果表明,与传统的骨驱动入路相比,软组织驱动入路大大提高了手术计划的准确性和有效性。
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