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Anisotropic Filtering with Nonlinear Structure Tensors

机译:具有非线性结构张量的各向异性滤波

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摘要

We present an anisotropic filtering scheme which uses a nonlinear version of the local structure tensor to dynamically adapt the shape of the neighborhood used to perform the estimation. In this way, only the samples along the orthogonal direction to that of maximum signal variation are chosen to estimate the value at the current position, which helps to better preserve boundaries and structure information. This idea sets the basis of an anisotropic filtering framework which can be applied for different kinds of linear filters, such as Wiener or LMMSE, among others. In this paper, we describe the underlying idea using anisotropic gaussian filtering which allows us, at the same time, to study the influence of nonlinear structure tensors in filtering schemes, as we compare the performance to that obtained with classical definitions of the structure tensor.
机译:我们提出了一种各向异性过滤方案,该方案使用局部结构张量的非线性版本来动态调整用于执行估计的邻域的形状。这样,仅选择与最大信号变化正交的方向上的样本来估计当前位置的值,这有助于更好地保留边界和结构信息。这个想法为各向异性滤波框架奠定了基础,该框架可用于其他种类的线性滤波器,例如Wiener或LMMSE。在本文中,我们描述了使用各向异性高斯滤波的基本思想,该思想使我们能够同时研究非线性结构张量在滤波方案中的影响,因为我们将性能与经典定义的结构张量进行了比较。

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