Pareto-dominated Hypervolume Measure: An Alternative Approach to Color Morphology

M. Köppen, K. Franke
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引用次数: 5

Abstract

In this paper, an alternative approach to the non-linear filtering of mathematical morphology for color and multi-spectral images based on the Pareto-dominated hypervolume measure is presented. Parteo-set theory is studied in this context, and among others, successfully implemented in the morphological filtering of color images. The demand to assess the quality of a multi-objective optimization algorithms, in particular, has put forth several kind of measures. One of these measures, the hypervolume, bases on the Lebesque measure of all points dominated by a set of points and maps a set of Pareto-optimal points to a non-negative scalar. By considering the hypervolume in the color-image domain, it can be shown that this hypervolume corresponds to another kind of color morphology, were each pixel in the filtered image represents the hypervolume of its set of neighbours in the original color image. In the following, some properties of the hypervolume, as used as an image-processing filter will be derived, and some potential applications of this approach to color morphology will be suggested.
帕累托主导的超体积测量:颜色形态学的一种替代方法
本文提出了一种基于pareto主导的超体积度量的彩色和多光谱图像数学形态学非线性滤波的替代方法。在此背景下研究了部分集理论,并成功地将其应用于彩色图像的形态滤波中。针对评价多目标优化算法质量的需求,提出了几种具体措施。其中一种度量是超体积,它基于由一组点支配的所有点的Lebesque度量,并将一组帕累托最优点映射到一个非负标量。通过考虑彩色图像域中的超体积,可以看出该超体积对应于另一种颜色形态,滤波图像中的每个像素代表其在原始彩色图像中的邻居集的超体积。下面,将推导用作图像处理滤波器的hypervolume的一些特性,并提出该方法在颜色形态学中的一些潜在应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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