从单目视频自动构建逼真手术模拟,解决软组织形变不自然问题。
Realistic Surgical Simulation from Monocular Videos
- 用3D高斯与变形场构建动态手术场景,多阶段优化提升几何一致性。
- 基于麦克斯韦模型的黏弹性模拟,真实还原组织复杂形变。
- 通过视频对比反推组织物理参数,适合手术训练与机器人系统开发。
本文针对从现成手术视频中自动实现逼真手术模拟的挑战,提出SurgiSim系统。现有方法在静态场景重建基础上结合物理动力学虽能实现高保真模拟,但在动态复杂手术过程中存在环境重建几何不一致、软组织模拟形变不真实的问题。为此,我们构建一个由3D高斯与变形场组成的动态手术场景,通过轨迹与各向异性正则化的多阶段优化,增强基准场景的几何一致性,作为模拟环境基础。为实现真实物理模拟,引入基于麦克斯韦模型的黏弹性形变模型,有效恢复组织复杂形变;同时,通过最小化输入视频与模拟结果之间的差异(以估计的组织运动为引导),反演组织物理参数,确保模拟结果的真实性。在多种手术场景与交互任务上的实验表明,SurgiSim可生成高质量软组织模拟效果,展现出在手术训练、术前规划及机器人手术系统中的巨大潜力。
原文摘要 · Abstract (English)
This paper tackles the challenge of automatically performing realistic surgical simulations from readily available surgical videos. Recent efforts have successfully integrated physically grounded dynamics within 3D Gaussians to perform high-fidelity simulations in well-reconstructed simulation environments from static scenes. However, they struggle with the geometric inconsistency in reconstructing simulation environments and unrealistic physical deformations in simulations of soft tissues when it comes to dynamic and complex surgical processes. In this paper, we propose SurgiSim, a novel automatic simulation system to overcome these limitations. To build a surgical simulation environment, we maintain a canonical 3D scene composed of 3D Gaussians coupled with a deformation field to represent a dynamic surgical scene. This process involves a multi-stage optimization with trajectory and anisotropic regularization, enhancing the geometry consistency of the canonical scene, which serves as the simulation environment. To achieve realistic physical simulations in this environment, we implement a Visco-Elastic deformation model based on the Maxwell model, effectively restoring the complex deformations of tissues. Additionally, we infer the physical parameters of tissues by minimizing the discrepancies between the input video and simulation results guided by estimated tissue motion, ensuring realistic simulation outcomes. Experiments on various surgical scenarios and interactions demonstrate SurgiSim's ability to perform realistic simulation of soft tissues among surgical procedures, showing its enormous potential for enhancing surgical training, planning, and robotic surgery systems. The project page is at https://namaenashibot.github.io/SurgiSim/.
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