Towards Biomechanically and Visually Plausible Volumetric Cutting Simulation of Deformable Bodies

Yinling Qian, Wen-shinn Huang, Weixin Si, Xiangyun Liao, Qiong Wang, P. Heng
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引用次数: 1

Abstract

Due to the simplicity and high efficiency, composited finite element method(CFEM) based virtual cutting attracted much attention in the field of virtual surgery in recent years. Even great progress has been made in volumetric cutting of deformable bodies, there are still several open problems restricting its applications in practical surgical simulator. First among them is cutting fracture modelling. Recent methods would produce cutting surface immediately after an intersection between the cutting plane and the object. But in real cutting, biological tissue would first deform under the external force induced by scalpel and then fracture occurs when the stress exceeds a threshold. Secondly, it’s computation-intensive to reconstruct cutting surface highly consistent with the scalpel trajectory, since reconstructed cutting surface in CFEM-based virtual cutting simulation is grid-dependent and the accuracy of cutting surface is proportional to the grid resolution. This paper propose a virtual cutting method based on CFEM which can effectively simulate cutting fracture in a biomechanically and visually plausible way and generate cutting surface which is consistent with the scalpel trajectory with a low resolution finite element grid. We model this realistic cutting as a deformation-fracture repeating process. In deformation stage, the object will deform along with the scalpel motion, while in the fracture stage cutting happens and a cutting surface will be generated from the scalpel trajectory. A delayed fracturing criteria is proposed to determine when and how the cutting fracture occurs and an influence domain adaptation method is employed to generate accurate cutting surface in both procedures of deformation and fracture. Experiments show that our method can realistically simulate volumetric cutting of deformable bodies and efficiently generate accurate cutting surface thus facilitating interactive applications. CCS Concepts • Human-centered computing → Virtual reality; • Computing methodologies → Physical simulation; Shape modeling;
变形体的生物力学和视觉上似是而非的体积切割模拟
基于复合有限元法(CFEM)的虚拟切割以其简单、高效等优点,近年来在虚拟外科领域备受关注。尽管在可变形体的体积切割方面已经取得了很大的进展,但仍有一些问题限制了其在实际手术模拟器中的应用。首先是切削裂缝建模。最近的方法是在切割平面与物体相交后立即产生切割面。但在实际的切割过程中,生物组织在手术刀的外力作用下会先发生变形,当应力超过一定阈值时发生断裂。其次,基于cfm的虚拟切割仿真中重构的切割面依赖于网格,且切割面精度与网格分辨率成正比,重构与刀刀轨迹高度一致的切割面需要大量的计算量。本文提出了一种基于CFEM的虚拟切割方法,该方法能够以生物力学和视觉上合理的方式有效地模拟切割骨折,并通过低分辨率有限元网格生成与刀刀轨迹一致的切割面。我们将这种真实的切削模拟为一个变形-断裂重复过程。在变形阶段,物体会随着手术刀运动而发生变形,而在断裂阶段,物体会发生切割,并由手术刀运动轨迹产生切割面。提出了一种延迟破裂准则来确定切割断裂发生的时间和方式,并采用影响域自适应方法来生成变形和断裂过程中的精确切割面。实验表明,该方法能够真实地模拟可变形物体的体积切削,并能有效地生成精确的切削面,便于交互式应用。•以人为本的计算→虚拟现实;•计算方法→物理模拟;形状建模;
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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