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摘要:
The purpose of reverse engineering is to convert a large point cloud into a CAD model. In reverse engineering, the key issue is segmentation, i.e. studying how to subdivide the point cloud into smaller regions, where each of them can be approximated by a single surface. Segmentation is relatively simple, if regions are bounded by sharp edges and small blends; problems arise when smoothly connected regions need to be separated. In this paper, a modified self-organizing feature map neural network (SOFM) is used to solve segmentation problem. Eight dimensional feature vectors (3-dimensional coordinates, 3-dimensional normal vectors, Gaussian curvature and mean curvature) are taken as input for SOFM. The weighted Euclidean distance measure is used to improve segmentation result. The method not only can deal with regions bounded by sharp edges, but also is very efficient to separating smoothly connected regions. The segmentation method using SOFM is robust to noise, and it operates directly on the point cloud. An examples is given to show the effect of SOFM algorithm.
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篇名 A MODIFIED SOFM METHOD FOR POINT CLOUD SEGMENTATION IN REVERSE ENGINEERING
来源期刊 计算机辅助绘图.设计与制造(英文版) 学科 工学
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年,卷(期) 2005,(2) 所属期刊栏目
研究方向 页码范围 33-37
页数 5页 分类号 TP391.72
字数 语种 中文
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计算机辅助绘图设计与制造(英文版)
季刊
1003-4951
11-2862/TP
北京海淀区学院路37号北航内 中国图学学会
eng
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