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首页> 外文期刊>IEEE transactions on visualization and computer graphics >Isosurface Extraction and Spatial Filtering using Persistent Octree (POT)
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Isosurface Extraction and Spatial Filtering using Persistent Octree (POT)

机译:使用持久八进制(POT)进行等值面提取和空间滤波

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摘要

We propose a novel persistent octree (POT) indexing structure for accelerating isosurface extraction and spatial filtering from volumetric data. This data structure efficiently handles a wide range of visualization problems such as the generation of view-dependent isosurfaces, ray tracing, and isocontour slicing for high dimensional data. POT can be viewed as a hybrid data structure between the interval tree and the branch-on-need octree (BONO) in the sense that it achieves the asymptotic bound of the interval tree for identifying the active cells corresponding to an isosurface and is more efficient than BONO for handling spatial queries. We encode a compact octree for each isovalue. Each such octree contains only the corresponding active cells, in such a way that the combined structure has linear space. The inherent hierarchical structure associated with the active cells enables very fast filtering of the active cells based on spatial constraints. We demonstrate the effectiveness of our approach by performing view-dependent isosurfacing on a wide variety of volumetric data sets and 4D isocontour slicing on the time-varying Richtmyer-Meshkov instability dataset
机译:我们提出了一种新颖的持久八叉树(POT)索引结构,用于加速从体积数据中提取等值面和空间过滤。这种数据结构可有效处理各种可视化问题,例如生成与视图有关的等值面,光线跟踪和针对高维数据的等值线切片。可以将POT视为间隔树和按需分支八叉树(BONO)之间的混合数据结构,因为它可以实现间隔树的渐近边界,以识别与等值面相对应的活动单元,并且效率更高比BONO来处理空间查询。我们为每个等值编码一个紧凑的八叉树。每个这样的八叉树仅包含相应的活动单元,以使组合结构具有线性空间。与活动单元相关联的固有分层结构能够根据空间限制对活动单元进行非常快速的过滤。我们通过对各种体积数据集执行依赖于视图的等值曲面化以及对时变Richtmyer-Meshkov不稳定性数据集进行4D等值线切片来证明我们方法的有效性

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