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On using anisotropic diffusion for skeleton extraction

机译:关于使用各向异性扩散进行骨架提取

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摘要

We present a novel and effective skeletonization algorithm for binary and gray-scale images, based on the anisotropic heat diffusion analogy. We diffuse the image in the direction normal to the feature boundaries and also allow tangential diffusion (curvature decreasing diffusion) to contribute slightly. The proposed anisotropic diffusion provides a high quality medial function in the image: it removes noise and preserves prominent curvatures of the shape along the level-sets (skeleton features). The skeleton strength map, which provides the likelihood of a point to be part of the skeleton, is defined by the mean curvature measure. Finally, thin and binary skeleton is obtained by non-maxima suppression and hysteresis thresholding of the skeleton strength map. Our method outperforms the most related and the popular methods in skeleton extraction especially in noisy conditions. Results show that the proposed approach is better at handling noise in images and preserving the skeleton features at the centerline of the shape.
机译:基于各向异性热扩散类比,我们提出了一种新颖有效的二进制和灰度图像骨架化算法。我们在垂直于特征边界的方向上扩散图像,并且还允许切向扩散(曲率递减扩散)略有贡献。拟议的各向异性扩散在图像中提供了高质量的中间功能:它消除了噪声并沿水平集(骨架特征)保留了形状的显着曲率。骨架强度图由平均曲率度量定义,该强度图提供了点成为骨架一部分的可能性。最后,通过骨骼强度图的非最大值抑制和滞后阈值化获得了薄而二元的骨骼。我们的方法优于骨骼提取中最相关和流行的方法,尤其是在嘈杂的条件下。结果表明,所提出的方法在处理图像中的噪声以及保留形状中心线的骨架特征方面更好。

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