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Pareto-Morphology for Color Image Processing: A Comparative Study of Multivariate Morphologies

机译:彩色图像处理的帕累托形态:多元形态的比较研究

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This paper presents an approach to the generalization of grayscale morphology to color images. Attaining such a generalization is strongly related to the issues of multivariate ordering and to the Pareto sets of multiobjective optimization. Some ranking schemes for multivariate data are recalled. For color morphology, the most important underlying ranking scheme is reduced ordering (also referred to as total ordering). Also, there is the partial ordering, which gives the important class of Pareto-Morphologies. Since partial ordering by Pareto sets commutes with reduced ordering, a so-called Pareto-Morphology is defined as a generalized multivariate morphology for which the results will not change if its computations are restricted to the Pareto set of the (local) neighborhood of a pixel. By further applying the concept of fuzzy subsethood to color values, a Pareto-Morphology can be designed which is not based on reduced ordering; hence, it provides a manner for native color treatment. The properties of this newly proposed Fuzzy-Pareto-Morphology and examples of its application for the processing of color textile images are given.
机译:本文提出了一种将灰度形态学推广到彩色图像的方法。获得这种概括与多变量排序问题以及多目标优化的帕累托集密切相关。召回了一些用于多元数据的排名方案。对于颜色形态,最重要的基础排序方案是简化排序(也称为总排序)。另外,还有部分排序,它给出了帕累托形态学的重要类别。由于帕累托集的部分排序以减序的方式交换,所以所谓的帕累托形态被定义为广义多元形态,如果其计算仅限于像素(局部)邻域的帕累托集,其结果将不会改变。通过将模糊子集的概念进一步应用于颜色值,可以设计帕累托形态,该帕累托形态不基于减少的排序;因此,它提供了一种自然色彩处理的方式。给出了这种新提出的模糊-帕累托形态学的性质及其在彩色纺织品图像处理中的应用实例。

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