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Multi-resolution Hierarchical Point Cloud Segmenting

机译:多分辨率分层点云分段

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摘要

Segmentation is a fundamental issue in point cloud geometry process. It has encountered two difficulties. From one side, those efficient mesh based segmentation algorithms could not be applied to cloud, as point cloud doesn't have topology information; the other difficulty is that the existing point cloud segmentation algorithm could not process large scale models directly. In this paper, we introduce a technique to directly segment a large-scale point cloud into distinct parts. We first construct a simplified approximate geometry model for point cloud based on point cloud's boundary volume hierarchy. This new geometry model is a simplified point model enhanced with topology information. We implement a segmentation algorithm to decompose the simplified model into several parts, and then a new simplified model with better approximation is constructed for each of the segmented parts. Next hierarchy segmentation can be done on these simplified models with better resolution. Our experiment results show that the algorithm is robust and efficient.
机译:分割是点云几何过程中的基本问题。它遇到了两个困难。从一侧,那些高效的基于网格的分段算法无法应用于云,因为点云没有拓扑信息;其他困难是现有点云分割算法无法直接处理大规模模型。在本文中,我们介绍了一种技术,将大规模点云分段为不同的部分。我们首先构建基于点云的边界卷层次结构的点云的简化近似几何模型。这个新的几何模型是一种简化的点模型,增强了拓扑信息。我们实现分割算法将简化模型分解为几个部分,然后为每个分段部分构建具有更好近似的新简化模型。可以在这些简化模型中完成下一个层次结构分割,具有更好的分辨率。我们的实验结果表明,该算法具有稳健且高效。

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