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Multiscale segmentation with vector-valued nonlinear diffusions on arbitrary graphs

机译:任意图上带有向量值非线性扩散的多尺度分割

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We propose a novel family of nonlinear diffusion equations and apply it to the problem of segmentation of multivalued images. We show that this family can be viewed as an extension of stabilized inverse diffusion equations (SIDEs) which were proposed for restoration, enhancement, and segmentation of scalar-valued signals and images in . Our new diffusion equations can process vector-valued images defined on arbitrary graphs which makes them well suited for segmentation. In addition, we introduce novel ways of utilizing the shape information during the diffusion process. We demonstrate the effectiveness of our methods on a large number of segmentation tasks.
机译:我们提出了一个新颖的非线性扩散方程族,并将其应用于多值图像的分割问题。我们表明,该族可以看作是稳定逆扩散方程(SIDEs)的扩展,它被提出用于标量值信号和图像的恢复,增强和分割。我们的新扩散方程可以处理在任意图中定义的矢量值图像,这使其非常适合分割。此外,我们介绍了在扩散过程中利用形状信息的新颖方法。我们证明了我们的方法在大量细分任务上的有效性。

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