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Augmented reality and physical hybrid model simulation for preoperative planning of metopic craniosynostosis surgery

机译:用于术前规划的增强现实与物理混合模型模拟

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OBJECTIVE The main objective of neurosurgery is to establish safe and reliable surgical techniques. Medical technology has advanced during the 21st century, enabling the development of increasingly sophisticated tools for preoperative study that can be used by surgeons before performing surgery on an actual patient. Laser-printed models are a robust tool for improving surgical performance, planning an operative approach, and developing the skills and strategy to deal with uncommon and high-risk intraoperative difficulties. Practice with these models enhances the surgeon’s understanding of 3D anatomy but has some limitations with regard to tactile perception. In this study, the authors aimed to develop a preoperative planning method that combines a hybrid model with augmented reality (AR) to enhance preparation for and planning of a specific surgical procedure, correction of metopic craniosynostosis, also known as trigonocephaly. METHODS With the use of imaging data of an actual case patient who underwent surgical correction of metopic craniosynostosis, a physical hybrid model (for hands-on applications) and an AR app for a mobile device were created. The hybrid customized model was developed by using analysis of diagnostic CT imaging of a case patient with metopic craniosynostosis. Created from many different types of silicone, the physical model simulates anatomical conditions, allowing a multidisciplinary team to deal with different situations and to precisely determine the appropriate surgical approach. A real-time AR interface with the physical model was developed by using an AR app that enhances the anatomic aspects of the patient’s skull. This method was used by 38 experienced surgeons (craniofacial plastic surgeons and neurosurgeons), who then responded to a questionnaire that evaluated the realism and utility of the hybrid AR simulation used in this method as a beneficial educational tool for teaching and preoperative planning in performing surgical metopic craniosynostosis correction. RESULTS The authors developed a practice model for planning the surgical cranial remodeling used in the correction of metopic craniosynostosis. In the hybrid AR model, all aspects of the surgical procedure previously performed on the case patient were simulated: subcutaneous and subperiosteal dissection, skin incision, and skull remodeling with absorbable miniplates. The pre- and postoperative procedures were also carried out, which emphasizes the role of the AR app in the hybrid model. On the basis of the questionnaire, the hybrid AR tool was approved by the senior surgery team and considered adequate for educational purposes. Statistical analysis of the questionnaire responses also highlighted the potential for the use of the hybrid model in future applications. CONCLUSIONS This new preoperative platform that combines physical and virtual models may represent an important method to improve multidisciplinary discussion in addition to being a powerful teaching tool. The hybrid model associated with the AR app provided an effective training environment, and it enhanced the teaching of surgical anatomy and operative strategies in a challenging neurosurgical procedure.
机译:目的是神经外科的主要目标是建立安全可靠的手术技巧。医疗技术在21世纪先进了,使术前研究的开发能够开发出常见的研究,可以在实际患者对手术进行手术前进行外科医生使用。激光印刷型号是一种鲁棒工具,用于改善手术性能,规划操作方法,制定处理罕见和高风险术中困难的技能和策略。使用这些模型的实践增强了外科医生对3D解剖学的理解,但在触觉感知方面存在一些局限性。在这项研究中,作者旨在开发一种术前计划方法,将混合模型与增强现实(AR)相结合,以加强制备和规划特定的外科手术,转录颅骨矫正,也称为Trigonocephaly。方法利用使用实际患者的成像数据,该患者接受了转移性颅骨的外科矫正,物理混合模型(用于动手应用)和用于移动设备的AR应用程序。通过使用分析患者患者具有转移性颅骨的诊断CT成像开发了混合定制模型。从许多不同类型的硅胶中创建,物理模型模拟了解剖条件,允许多学科团队处理不同的情况,并准确地确定适当的手术方法。使用AR应用程序开发了具有物理模型的实时AR接口,该AR应用程序增强了患者头骨的解剖学方面。该方法由38个经验丰富的外科医生(颅面积整形外科医生和神经外科)使用,然后响应调查问卷,该调查表评估了这种方法中使用的混合动力AR模拟的现实主义和效用,作为教学和术前规划在表演外科的教学和术前规划转发颅骨弯曲矫正。结果作者开发了一种规划用于校正分类性颅骨矫正的外科颅骨重塑的实践模型。在杂交AR模型中,模拟了先前在病例患者上进行的外科手术的各个方面:皮下和亚透镜剖检,皮肤切口和可吸收的小柱的颅骨重塑。还执行了预先和术后程序,这强调了AR应用在混合模型中的作用。在调查问卷的基础上,Hybrid AR工具由高级手术团队批准并考虑充足的教育目的。对调查问卷响应的统计分析还强调了在未来应用中使用混合模型的可能性。结论这种新的术前平台结合了物理和虚拟模型,可以代表改善多学科讨论的重要方法,除了成为一个强大的教学工具。与AR应用相关的混合模型提供了有效的培训环境,并提高了在挑战神经外科手术中的外科解剖学和手术策略的教学。

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