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Optimizing time step size in modeling liver deformation

机译:优化肝脏变形建模时间步长

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Mass Spring Model (MSM) is often used to model human liver due to its easy implementation and low computational complexity. This paper focuses on development of a real-time human liver simulation, which enabled an efficient implementation of liver mechanical response incorporating nonlinearity and viscoelasticity properties. Optimization of the computational problems is necessary to permit real-time liver simulation. Adam Variable Step-Size Predictor-Corrector (AVSPC) method is preferred to solve the governing differential equations and considerably more accurate than Fourth-order Runge-Kutta (RK4) method. AVSPC method with higher accuracy leads to higher quality of liver simulation. Reduction of local truncation error is needed to maintain accuracy as well as preventing model state from rapid change. Optimized time step size 0.0063 was implemented in CHAI 3D to simulate real-time liver deformation caused by surgical indenter. Deformation of liver with higher deformation rate appears to have higher stiffness and higher stress relaxation rate. In conclusion, this model is a plausibly significant liver tissue model which is more suitable for real-time interaction with lower computational cost, more accurate, realistic and acceptable to be used in the near future.
机译:由于其易于实现和低计算复杂性,群众弹簧模型(MSM)通常用于模拟人肝。本文重点介绍了实时人肝模拟的发展,其能够有效地实现肝脏机械反应的掺入非线性和粘弹性性能。允许实时肝模拟所必需的计算问题优化。 ADAM可变步长预测器 - 校正器(AVSPC)方法是优选解决控制微分方程,并且比四阶Runge-Kutta(RK4)方法相当准确。具有更高精度的AVSPC方法导致更高质量的肝仿真。需要减少本地截断误差以维持准确性以及防止模型状态从快速变化。优化的时间步长0.0063在柴3D中实施,以模拟由外科缩进引起的实时肝脏变形。具有更高变形率的肝脏变形似乎具有更高的刚度和更高的应力松弛率。总之,该模型是一种可编征重要的肝组织模型,更适合于与较低的计算成本,更准确,逼真,可接近的实际相互作用,以便在不久的将来使用。

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