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Orientation diffusions

机译:广播方向

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摘要

Diffusions are useful for image processing and computer vision because they provide a convenient way of smoothing noisy data, analyzing images at multiple scales, and enhancing discontinuities. A number of diffusions of image brightness have been defined and studied so far; they may be applied to scalar and vector-valued quantities that are naturally associated with intervals of either the real line, or other flat manifolds. Some quantities of interest in computer vision, and other areas of engineering that deal with images, are defined on curved manifolds; typical examples are orientation and hue that are defined on the circle. Generalizing brightness diffusions to orientation is not straightforward, especially in the case where a discrete implementation is sought. An example of what may go wrong is presented. A method is proposed to define diffusions of orientation-like quantities. First a definition in the continuum is discussed, then a discrete orientation diffusion is proposed. The behavior of such diffusions is explored both analytically and experimentally. It is shown how such orientation diffusions contain a nonlinearity that is reminiscent of edge-process and anisotropic diffusion. A number of open questions are proposed.
机译:扩散对于图像处理和计算机视觉很有用,因为它们提供了一种方便的方法来平滑嘈杂的数据,以多个比例分析图像并增强不连续性。到目前为止,已经定义并研究了许多图像亮度的扩散。它们可以应用于与实线或其他平面流形的间隔自然相关联的标量和矢量值的量。在弯曲的歧管上定义了对计算机视觉以及处理图像的其他工程领域感兴趣的一些内容;典型示例是圆上定义的方向和色相。将亮度扩散推广到方向并非易事,特别是在寻求离散实现的情况下。给出了可能出问题的示例。提出了一种方法来定义类似方向的量的扩散。首先讨论连续体中的定义,然后提出离散取向扩散。这种扩散的行为已在分析和实验上进行了探索。示出了这种取向扩散如何包含非线性,该非线性使人联想到边缘过程和各向异性扩散。提出了许多未解决的问题。

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