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Real-time surgery simulation of intracranial aneurysm clipping with patient-specific geometries and haptic feedback

机译:患者特定几何形状和触觉反馈的颅内动脉瘤夹具的实时手术模拟

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Providing suitable training for aspiring neurosurgeons is becoming more and more problematic. The increasing popularity of the endovascular treatment of intracranial aneurysms leads to a lack of simple surgical situations for clipping operations, leaving mainly the complex cases, which present even experienced surgeons with a challenge. To alleviate this situation, we have developed a training simulator with haptic interaction allowing trainees to practice virtual clipping surgeries on real patient-specific vessel geometries. By using specialized finite element (FEM) algorithms (fast finite element method, matrix condensation) combined with GPU acceleration, we can achieve the necessary frame rate for smooth real-time interaction with the detailed models needed for a realistic simulation of the vessel wall deformation caused by the clamping with surgical clips. Vessel wall geometries for typical training scenarios were obtained from 3D-reconstructed medical image data, while for the instruments (clipping forceps, various types of clips, suction tubes) we use models provided by manufacturer Aesculap AG. Collisions between vessel and instruments have to be continuously detected and transformed into corresponding boundary conditions and feedback forces, calculated using a contact plane method. After a training, the achieved result can be assessed based on various criteria, including a simulation of the residual blood flow into the aneurysm. Rigid models of the surgical access and surrounding brain tissue, plus coupling a real forceps to the haptic input device further increase the realism of the simulation.
机译:为有吸引力的神经外部提供合适的培训正在变得越来越有问题。颅内动脉瘤血管内治疗的越来越越来越越来越缺乏剪切操作的简单外科局势,主要留下复杂的案例,即使有挑战的经历过的外科医生。为了缓解这种情况,我们开发了一种患有触觉互动的培训模拟器,允许学员在真正的患者特定的船舶几何形状上练习虚拟剪辑手术。通过使用专用有限元(FEM)算法(快速有限元方法,矩阵冷凝)与GPU加速相结合,我们可以实现必要的帧速率,以便与血管墙变形的逼真模拟所需的详细模型进行平稳的实时相互作用由手术夹引起的夹紧引起。用于典型训练场景的船舶壁几何从3D重建的医学图像数据获得,而对于仪器(剪切镊子,各种类型的夹子,吸管),我们使用制造商Aesculap AG提供的型号。容器和器械之间的碰撞必须连续地检测和转换成使用接触平面方法计算的相应边界条件和反馈力。在训练之后,可以基于各种标准评估所取得的结果,包括将残留血液流入动脉瘤的模拟。刚性模型的手术通道和周围脑组织,加上真正的镊子到触觉输入装置进一步增加了模拟的真实感。

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