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A Discrete Mechanics Framework for Real Time Virtual Surgical Simulations with Application to Virtual Laparoscopic Nephrectomy

机译:一种用于实时虚拟手术模拟的离散力学框架,应用于虚拟腹腔镜肾切除术

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The inability to render realistic soft-tissue behavior in real time has remained a barrier to face and content aspects of validity for many virtual reality surgical training systems. Biophysically based models are not only suitable for training purposes but also for patient-specific clinical applications, physiological modeling and surgical planning. When considering the existing approaches for modeling soft tissue for virtual reality surgical simulation, the computer graphics-based approach lacks predictive capability; the mass-spring model (MSM) based approach lacks biophysically realistic soft-tissue dynamic behavior; and the finite element method (FEM) approaches fail to meet the real-time requirement. The present development stems from physics fundamental thermodynamic first law; for a space discrete dynamic system directly formulates the space discrete but time continuous governing equation with embedded material constitutive relation and results in a discrete mechanics framework which possesses a unique balance between the computational efforts and the physically realistic soft-tissue dynamic behavior. We describe the development of the discrete mechanics framework with focused attention towards a virtual laparoscopic nephrectomy application.
机译:实际情况下无法实现现实的软组织行为仍然是对许多虚拟现实外科训练系统的有效性的面对和内容方面的障碍。基于生物物理学的模型不仅适用于培训目的,还适用于患者特异性临床应用,生理学建模和手术规划。在考虑用于对虚拟现实外科模拟的软组织进行建模的现有方法时,基于计算机的基于计算机图形的方法缺乏预测能力;基于MASS-SPRING模型(MSM)的方法缺乏生物物质地逼真的软组织动态行为;并且有限元方法(FEM)方法无法满足实时要求。目前的发展源于物理基础热力学第一法;对于空间离散动态系统,直接制定空间离散但是具有嵌入式材料本构关系的时间连续控制方程,并导致分立的力学框架,在计算工作与物理上现实的软组织动态行为之间具有独特的平衡。我们描述了具有专注于虚拟腹腔镜肾切除术应用的离散力学框架的发展。

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