Concentric Circle Glyphs for Enhanced Depth-Judgment in Vascular Models

N. Lichtenberg, C. Hansen, K. Lawonn
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引用次数: 14

Abstract

Using 3D models of medical data for surgery or treatment planning requires a comprehensive visualization of the data. This is crucial to support the physician in creating a cognitive image of the presented model. Vascular models are complex structures and, thus, the correct spatial interpretation is difficult. We propose view-dependent circle glyphs that enhance depth perception in vascular models. The glyphs are automatically placed on vessel end-points in a balanced manner. For this, we introduce a vessel end-point detection algorithm as a pre-processing step and an extensible, feature-driven glyph filtering strategy. Our glyphs are simple to implement and allow an enhanced and quick judgment of the depth value that they represent. We conduct a qualitative evaluation to compare our approach with two existing approaches, that enhance depth perception with illustrative visualization techniques. The evaluation shows that our glyphs perform better in the general case and decisively outperform the reference techniques when it comes to just noticeable differences.
增强血管模型深度判断的同心圆符号
使用医疗数据的3D模型进行手术或治疗计划需要对数据进行全面的可视化。这是至关重要的,以支持医生在创建一个认知图像提出的模型。血管模型是复杂的结构,因此,正确的空间解释是困难的。我们提出了视图依赖的圆形符号,以增强血管模型的深度感知。这些符号以一种平衡的方式自动放置在容器的末端。为此,我们引入了一种容器端点检测算法作为预处理步骤和一种可扩展的、特征驱动的字形过滤策略。我们的符号很容易实现,并且允许对它们所代表的深度值进行增强和快速判断。我们进行定性评估,将我们的方法与两种现有的方法进行比较,这两种方法通过说明性可视化技术增强了深度感知。评估表明,我们的字形在一般情况下表现得更好,当涉及到明显的差异时,我们的字形表现明显优于参考技术。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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