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Euclidean Distance-Ordered Thinning for Skeleton Extraction

机译:欧氏距离有序稀疏用于骨骼提取

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The skeleton is an important feature for the representation of a shape in image analysis. In this paper, we propose a novel Euclidean distance-ordered thinning algorithm for skeleton extraction. We first give the deletion templates which can determine a given pixel to be safely deleted or not from the pattern of its 8-neighbors. Then we delete the points which satisfy the deletion templates until there is no point that can be deleted in the linked lists of ascending order. Finally, the skeleton of the object is obtained. The experiment results show that the algorithm is able to extract the connected and onepixel wide skeleton that can correctly preserve the topology of the object. Furthermore, the extracted skeleton locates on the accurate position and it is insensitive to boundary noise.
机译:骨骼是图像分析中表示形状的重要功能。在本文中,我们提出了一种新颖的欧氏距离排序稀疏算法进行骨架提取。我们首先提供删除模板,该模板可以从8个邻居的模式中确定是否可以安全删除给定的像素。然后,我们删除满足删除模板要求的点,直到升序链接列表中没有可以删除的点为止。最后,获得对象的骨架。实验结果表明,该算法能够提取连通的,一个像素宽的骨架,可以正确保存物体的拓扑结构。此外,提取的骨骼位于精确的位置,并且对边界噪声不敏感。

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