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Efficient Structure-Aware Selection Techniques for 3D Point Cloud Visualizations with 2DOF Input

机译:具有2DOF输入的3D点云可视化的高效结构感知选择技术

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Data selection is a fundamental task in visualization because it serves as a pre-requisite to many follow-up interactions. Efficient spatial selection in 3D point cloud datasets consisting of thousands or millions of particles can be particularly challenging. We present two new techniques, TeddySelection and CloudLasso, that support the selection of subsets in large particle 3D datasets in an interactive and visually intuitive manner. Specifically, we describe how to spatially select a subset of a 3D particle cloud by simply encircling the target particles on screen using either the mouse or direct-touch input. Based on the drawn lasso, our techniques automatically determine a bounding selection surface around the encircled particles based on their density. This kind of selection technique can be applied to particle datasets in several application domains. TeddySelection and CloudLasso reduce, and in some cases even eliminate, the need for complex multi-step selection processes involving Boolean operations. This was confirmed in a formal, controlled user study in which we compared the more flexible CloudLasso technique to the standard cylinder-based selection technique. This study showed that the former is consistently more efficient than the latter—in several cases the CloudLasso selection time was half that of the corresponding cylinder-based selection.
机译:数据选择是可视化中的基本任务,因为它是许多后续交互的先决条件。在由数千或数百万个粒子组成的3D点云数据集中进行有效的空间选择可能尤其具有挑战性。我们介绍了两种新技术,TeddySelection和CloudLasso,它们以交互和直观的方式支持在大粒子3D数据集中选择子集。具体来说,我们描述如何通过使用鼠标或直接触摸输入在屏幕上简单地环绕目标粒子来在空间上选择3D粒子云的子集。基于绘制的套索,我们的技术会根据其密度自动确定围绕粒子的边界选择表面。这种选择技术可以应用于多个应用领域中的粒子数据集。 TeddySelection和CloudLasso减少了,在某些情况下甚至消除了对涉及布尔运算的复杂多步选择过程的需求。一项正式的受控用户研究证实了这一点,在该研究中,我们将更灵活的CloudLasso技术与基于标准圆柱体的选择技术进行了比较。这项研究表明,前者始终比后者效率更高-在某些情况下,CloudLasso选择时间是相应的基于圆柱的选择时间的一半。

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