Guo Yufan, Kou Dongliang, Zhang Xukun, Zhang Lihua, Cao Kai
College of Intelligent Robotics and Advanced Manufacturing, Fudan University, Shanghai, China.
Sci Rep. 2025 Jul 22;15(1):26557. doi: 10.1038/s41598-025-11519-4.
Liver simulation serves as a crucial foundation for precise preoperative planning and intraoperative navigation, with its accuracy and real-time performance directly impacting the safety and efficiency of surgical procedures. However, existing physical simulation techniques face a trade-off between high precision with slow computational speeds and rapid performance with diminished accuracy. This imbalance restricts their utility in dynamic surgical environments that demand both accuracy and real-time interaction. To overcome this limitation, we present a novel real-time liver simulation algorithm leveraging Extended Position-Based Dynamics (XPBD). Our approach integrates four well-formulated physical constraints-Distance, Volume, Shape Matching, and the Neo-Hookean model-within a proprietary, high-efficiency physics engine, achieving high-precision, real-time simulation of hepatic geometric deformations and mechanical properties. Experimental evaluations reveal that our method not only meets the stringent real-time requirements of surgical procedures but also significantly enhances the visual realism and stability of simulations. This advancement demonstrates substantial potential for extensive applications in preoperative planning, intraoperative navigation, and medical training.
肝脏模拟是精确术前规划和术中导航的关键基础,其准确性和实时性能直接影响手术的安全性和效率。然而,现有的物理模拟技术面临着高精度与计算速度慢以及快速性能与准确性降低之间的权衡。这种不平衡限制了它们在需要准确性和实时交互的动态手术环境中的效用。为了克服这一限制,我们提出了一种利用扩展基于位置的动力学(XPBD)的新型实时肝脏模拟算法。我们的方法在专有的高效物理引擎中集成了四个精心制定的物理约束——距离、体积、形状匹配和新胡克模型,实现了肝脏几何变形和力学性能的高精度实时模拟。实验评估表明,我们的方法不仅满足手术的严格实时要求,还显著提高了模拟的视觉真实感和稳定性。这一进展显示了在术前规划、术中导航和医学培训中的广泛应用的巨大潜力。