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Geodesic via Asymmetric Heat Diffusion Based on Finsler Metric

机译:基于FINSLER公制的来自非对称热扩散的测地测量

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Current image segmentation involves strongly non-uniform, anisotropic and asymmetric measures of path length, which challenges available algorithms. In order to meet these challenges, this paper applies the Finsler metric to the geodesic method based on heat diffusion. This metric is non-Riemannian, anisotropic and asymmetric, which helps the heat to flow more on the features of interest. Experiments demonstrate the feasibility of the proposed method. The experimental results show that our algorithm is of strong robustness and effectiveness. The proposed method can be applied to contour detection and tubular structure segmentation in images, such as vessel segmentation in medical images and road extraction in satellite images and so on.
机译:当前的图像分割涉及强烈的不均匀,各向异性和不对称的路径长度,这是挑战可用算法的挑战。为了满足这些挑战,本文将FinSler度量应用于基于热扩散的测地法。该度量是非riemannian,各向异性和不对称的,这有助于热量流动更多地流动感兴趣的特征。实验证明了该方法的可行性。实验结果表明,我们的算法具有强大的鲁棒性和有效性。所提出的方法可以应用于图像的轮廓检测和管状结构分割,例如医学图像中的血管分割和卫星图像中的道路提取等。

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