IEEE Trans Vis Comput Graph. 2018 Dec;24(12):3111-3122. doi: 10.1109/TVCG.2017.2772237. Epub 2017 Nov 13.
Visualization of medical organs and biological structures is a challenging task because of their complex geometry and the resultant occlusions. Global spherical and planar mapping techniques simplify the complex geometry and resolve the occlusions to aid in visualization. However, while resolving the occlusions these techniques do not preserve the geometric context, making them less suitable for mission-critical biomedical visualization tasks. In this paper, we present a shape-preserving local mapping technique for resolving occlusions locally while preserving the overall geometric context. More specifically, we present a novel visualization algorithm, LMap, for conformally parameterizing and deforming a selected local region-of-interest (ROI) on an arbitrary surface. The resultant shape-preserving local mappings help to visualize complex surfaces while preserving the overall geometric context. The algorithm is based on the robust and efficient extrinsic Ricci flow technique, and uses the dynamic Ricci flow algorithm to guarantee the existence of a local map for a selected ROI on an arbitrary surface. We show the effectiveness and efficacy of our method in three challenging use cases: (1) multimodal brain visualization, (2) optimal coverage of virtual colonoscopy centerline flythrough, and (3) molecular surface visualization.
医学器官和生物结构的可视化是一项具有挑战性的任务,因为它们具有复杂的几何形状和由此产生的遮挡。全局球形和平面映射技术简化了复杂的几何形状,并解决了遮挡问题,以帮助可视化。然而,在解决遮挡问题的同时,这些技术并没有保留几何上下文,因此不太适合关键任务的生物医学可视化任务。在本文中,我们提出了一种保留形状的局部映射技术,用于在保留整体几何上下文的同时局部解决遮挡问题。更具体地说,我们提出了一种新的可视化算法 LMap,用于在任意曲面上保形参数化和变形选择的局部感兴趣区域(ROI)。由此产生的保形局部映射有助于可视化复杂表面,同时保留整体几何上下文。该算法基于强大且高效的外尔 Ricci 流技术,并使用动态 Ricci 流算法来保证在任意曲面上为选择的 ROI 存在局部映射。我们在三个具有挑战性的用例中展示了我们方法的有效性和功效:(1)多模态脑可视化,(2)虚拟结肠镜检查中心线飞行的最佳覆盖,以及(3)分子表面可视化。