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Spatially-Variant Anisotropic Morphological Filters Driven by Gradient Fields

机译:梯度场驱动的空间变异各向异性形态滤波器

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This paper deals with the theory and applications of spatially-variant mathematical morphology. We formalize the definition of spatially variant dilation/erosion and opening/closing for gray-level images using exclusively the structuring function, without resorting to complement. This sound theoretical framework allows to build morphological operators whose structuring elements can locally adapt their orientation across the dominant direction of image structures. The orientation at each pixel is extracted by means of a diffusion process of the average square gradient field, which regularizes and extends the orientation information from the edges of the objects to the homogeneous areas of the image. The proposed filters are used for enhancement of anisotropic images features such as coherent, flow-like structures.
机译:本文讨论了空间变异数学形态学的理论和应用。我们仅使用结构函数来对灰度图像的空间变体扩张/侵蚀和打开/关闭进行定义,而不求助于补充。这种合理的理论框架允许构建形态运算符,其结构元素可以在图像结构的主导方向上局部调整其方向。借助于平均正方形梯度场的扩散过程提取每个像素处的方向,该过程将方向信息从对象的边缘规则化并扩展到图像的均匀区域。所提出的滤波器用于增强各向异性图像特征,例如相干,类似流的结构。

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