一种用于三维CAD模型检索和索引的表面划分谱(SPS)

H. Rea, D. Clark, J. Corney, N. K. Taylor
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引用次数: 14

摘要

人工索引大型几何信息数据库成本高昂,而且往往不切实际。由于对检索和索引方案的研究集中在各种3D到2D映射的开发上,这些映射将形状表征为具有少量参数的直方图。已经提出了许多生成这种二维签名(即直方图)的方法,通常基于曲率或距离的几何度量。然而,这些几何特征缺乏拓扑信息,并且随着形状复杂性的增加而变得模糊。这项工作描述了一种新的方法来表征形状的几何形状和拓扑结构在一个单一的二维图形,表面划分谱(SPS)。我们评估了使用SPS与神经网络来评估测试集中形状相似性的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A surface partitioning spectrum (SPS) for retrieval and indexing of 3D CAD models
Manual indexing of large databases of geometric information is costly and often impracticable. Because of this research into retrieval and indexing schemes has focused on the development of various 3D to 2D mappings that characterise a shape as a histogram with a small number of parameters. Many methods of generating such 2D signatures (i.e. histograms) have been proposed, generally based on geometric measures of say curvature or distance. However these geometric signatures lack information about topology and tend to become indistinct as the complexity of the shape increases. This work describes a new method for characterising both the geometry and topology of shapes in a single 2D graph, the surface partitioning spectrum (SPS). We evaluate the effectiveness of using the SPS with a neural network to assess the similarity of shapes within a test set.
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