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Volume Preserved Mass–Spring Model with Novel Constraints for Soft Tissue Deformation

机译:具有软组织变形新约束的体积保留质量弹簧模型

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摘要

An interactive surgical simulation system needs to meet three main requirements, speed, accuracy, and stability. In this paper, we present a stable and accurate method for animating mass–spring systems in real time. An integration scheme derived from explicit integration is used to obtain interactive realistic animation for a multiobject environment. We explore a predictor–corrector approach by correcting the estimation of the explicit integration in a poststep process. We introduce novel constraints on positions into the mass–spring model (MSM) to model the nonlinearity and preserve volume for the realistic simulation of the incompressibility. We verify the proposed MSM by comparing its deformations with the reference deformations of the nonlinear finite-element method. Moreover, experiments on porcine organs are designed for the evaluation of the multiobject deformation. Using a pair of freshly harvested porcine liver and gallbladder, the real organ deformations are acquired by computed tomography and used as the reference ground truth. Compared to the porcine model, our model achieves a mm mean absolute error measured at landmark locations for cases with small deformation (the largest deformation is mm) and a mm mean absolute error for cases with large deformation (the largest deformation is mm). The changes of volume for the two deformations are limited to and , respectively. Finally, an implementation in a virtual reality environment for laparoscopic cholecystectomy demonstrates that our model is capable to simulate large deformation and preserve volume in real-time ca- culations.
机译:交互式外科手术仿真系统需要满足三个主要要求,即速度,准确性和稳定性。在本文中,我们提出了一种稳定且准确的实时质量弹簧系统动画方法。从显式集成派生的集成方案用于获得多对象环境的交互式逼真的动画。我们通过在后继过程中对显式积分的估计进行校正来探索一种预测器-校正器方法。我们在质量弹簧模型(MSM)中引入了对位置的新约束,以对非线性进行建模并保留体积,以实现对不可压缩性的真实模拟。我们通过比较其变形与非线性有限元方法的参考变形来验证所提出的MSM。此外,设计了猪器官实验以评估多对象变形。使用一对新鲜收获的猪肝和胆囊,通过计算机断层摄影术获取真实的器官变形,并将其用作参考地面真相。与猪模型相比,我们的模型在变形较小(最大变形为mm)的情况下在地标位置处获得了mm平均绝对误差,在变形较大(最大变形为mm)的情况下获得了mm平均绝对误差。两种变形的体积变化分别限制为和。最后,在虚拟现实环境中进行腹腔镜胆囊切除术的实施证明,我们的模型能够模拟大变形并在实时计算中保留体积。

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