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Data-Driven Simulation of Detailed Surface Deformations for Surgery Training Simulators

机译:手术培训模拟器的详细表面变形的数据驱动模拟

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Data-driven methods have received increasing attention in recent years in order to meet real-time requirements in computationally intensive tasks. In our current work we examine the application of such approaches in soft-tissue simulation. The core idea is to split deformations into a coarse approximation and a differential part that contains the details. We employ the data-driven stamping approach to enrich a fast simulation surface with details that have been extracted from a set of example deformations obtained in offline computations. In this paper we detail our technique, and suggest further extensions over our previous work. First, we propose an improved method for correlating the current coarse approximation to the examples in the database. The new correlation metric combines Euclidean distances with cosine similarity. It allows for better example discrimination, resulting in a well-conditioned linear system. This also enables us to use a non-negative least squares solver that leads to a better regression and guarantees positive stamp blending weights. Second, we suggest a frequency-space stamp compression scheme that saves memory and, in most instances, is faster, since many operations can be done in the compressed space. Third, cutting is included by employing a physically-inspired influence map that allows for proper handling of material discontinuities that were not present in the original examples. We thoroughly evaluate our method and demonstrate its practical application in a surgical simulator prototype.
机译:为了满足计算密集型任务中的实时要求,近年来数据驱动方法受到越来越多的关注。在我们目前的工作中,我们研究了这种方法在软组织仿真中的应用。核心思想是将变形分为粗略近似和包含细节的微分部分。我们采用数据驱动的冲压方法来丰富快速仿真表面的细节,这些细节是从脱机计算中获得的一组示例变形中提取的。在本文中,我们详细介绍了我们的技术,并提出了对我们以前工作的进一步扩展。首先,我们提出了一种改进的方法,用于将当前的粗略近似与数据库中的示例相关联。新的相关度量结合了欧几里得距离和余弦相似度。它可以更好地区分示例,从而形成条件良好的线性系统。这也使我们能够使用非负最小二乘法求解器,从而导致更好的回归并保证正的图章混合权重。其次,我们建议一种频率空间标记压缩方案,该方案可以节省内存,并且在大多数情况下更快,因为可以在压缩空间中完成许多操作。第三,通过采用物理启发式影响图来进行切割,该图可以正确处理原始示例中不存在的材料间断。我们会彻底评估我们的方法,并证明其在外科手术模拟器原型中的实际应用。

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