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Convex Generalizations of Total Variation Based on the Structure Tensor with Applications to Inverse Problems

机译:基于结构张量的总变分的凸泛化及其在逆问题中的应用

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We introduce a generic convex energy functional that is suitable for both grayscale and vector-valued images. Our functional is based on the eigenvalues of the structure tensor, therefore it penalizes image variation at every point by taking into account the information from its neighborhood. It generalizes several existing variational penalties, such as the Total Variation and vectorial extensions of it. By introducing the concept of patch-based Jacobian operator, we derive an equivalent formulation of the proposed regularizer that is based on the Schatten norm of this operator. Using this new formulation, we prove convexity and develop a dual definition for the proposed energy, which gives rise to an efficient and parallelizable minimization algorithm. Moreover, we establish a connection between the minimization of the proposed convex regularizer and a generic type of nonlinear anisotropic diffusion that is driven by a spatially regularized and adaptive diffusion tensor. Finally, we perform extensive experiments with image denoising and deblurring for grayscale and color images. The results show the effectiveness of the proposed approach as well as its improved performance compared to Total Variation and existing vectorial extensions of it.
机译:我们介绍了适用于灰度图像和矢量值图像的通用凸能量函数。我们的函数基于结构张量的特征值,因此它通过考虑来自邻域的信息来惩罚每个点的图像变化。它概括了几种现有的变分惩罚,例如总变分及其矢量扩展。通过引入基于补丁的Jacobian算子的概念,我们得出了基于该算子的Schatten范数的拟议正则化器的等效公式。使用这种新公式,我们证明了凸性,并为提出的能量开发了双重定义,从而产生了一种有效且可并行化的最小化算法。此外,我们在提出的凸正则化器的最小化与由空间正则化和自适应扩散张量驱动的泛型非线性各向异性扩散之间建立了联系。最后,我们针对灰度和彩色图像进行了图像降噪和去模糊的大量实验。结果表明,与总变型及其现有的矢量扩展相比,该方法的有效性及其改进的性能。

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