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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >A bottom-up algorithm for finding principal curves with applications to image skeletonization
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A bottom-up algorithm for finding principal curves with applications to image skeletonization

机译:一种自下而上的算法,用于查找主曲线并应用于图像骨架化

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摘要

This paper proposes a new method for finding principal curves from data sets. Motivated by solving the problem of highly curved and self-intersecting curves, we present a bottom-up strategy to construct a graph called a principal graph for representing a principal curve. The method initializes a set of vertices based on principal oriented points introduced by Delicado, and then constructs the principal graph from these vertices through a two-layer iteration process. In inner iteration, the kernel smoother is used to smooth the positions of the vertices. In outer iteration, the principal graph is spanned by minimum spanning tree and is modified by detecting closed regions and intersectional regions, and then, new vertices are inserted into some edges in the principal graph. We tested the algorithm on simulated data sets and applied it to image skeletonization. Experimental results show the effectiveness of the proposed algorithm. (c) 2005 Pattern Recognition Society. Published by Elsevier Ltd. All rights reserved.
机译:本文提出了一种从数据集中寻找主曲线的新方法。通过解决高度弯曲和自相交的曲线的问题,我们提出了一种自下而上的策略,以构造称为主图的图形来表示主曲线。该方法基于Delicado引入的主向点初始化一组顶点,然后通过两层迭代过程从这些顶点构造主图。在内部迭代中,内核平滑器用于平滑顶点的位置。在外部迭代中,主图由最小生成树生成,并通过检测封闭区域和相交区域进行修改,然后将新顶点插入到主图的某些边中。我们在模拟数据集上测试了该算法,并将其应用于图像骨架化。实验结果表明了该算法的有效性。 (c)2005模式识别学会。由Elsevier Ltd.出版。保留所有权利。

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