Dynamic spherical volumetric simplex splins with application in biomedical simulation

Y. Tan, Jing Hua, Hong Qin
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引用次数: 1

Abstract

This paper presents a novel computational framework based on dynamic spherical volumetric simplex splines for simulation of genuszero real-world objects. In this framework, we first develop an accurate and efficient algorithm to reconstruct the high-fidelity digital model of a real-world object with spherical volumetric simplex splines which can represent with accuracy geometric, material, and other properties of the object simultaneously. With the tight coupling of Lagrangian mechanics, the dynamic volumetric simplex splines representing the object can accurately simulate its physical behavior because it can unify the geometric and material properties in the simulation. The visualization can be directly computed from the object's geometric or physical representation based on the dynamic spherical volumetric simplex splines during simulation without interpolation or resampling. We have applied the framework for biomechanic simulation of brain deformations, such as brain shifting during the surgery and brain injury under blunt impact. We have compared our simulation results with the ground truth obtained through intra-operative magnetic resonance imaging and the real biomechanic experiments. The evaluations demonstrate the excellent performance of our new technique presented in this paper.
动态球面体积单样条在生物医学模拟中的应用
本文提出了一种新的基于动态球面体积样条的零类真实物体仿真计算框架。在此框架下,我们首先开发了一种精确高效的算法,用球面体积单纯样条重建真实世界物体的高保真数字模型,该模型可以同时准确地表示物体的几何、材料和其他属性。在拉格朗日力学的紧密耦合下,代表物体的动态体积单纯形样条曲线可以将物体的几何性质和材料性质统一起来,从而准确地模拟物体的物理行为。在仿真过程中,可以根据动态球面体积样条直接从物体的几何或物理表示进行计算,而无需插值或重采样。我们已经将该框架应用于脑变形的生物力学模拟,如手术过程中的脑移位和钝性撞击下的脑损伤。我们将模拟结果与术中磁共振成像和真实生物力学实验获得的地面真实情况进行了比较。评价结果表明,本文提出的新技术具有优异的性能。
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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