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Pareto-based interval type-2 fuzzy c-means with multi-scale JND color histogram for image segmentation

机译:基于帕累托的间隔Type-2模糊C-ilit,具有多尺寸JND颜色直方图进行图像分割

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摘要

Although the interval type-2 fuzzy c-means clustering algorithm (IT2FCM) can well represent the uncertainty in data, there remain some problems to be solved: how to initialize cluster centers and how to determine fuzzifiers. In order to solve these issues of IT2FCM for color image segmentation, a pareto-based interval type-2 fuzzy c-means with multi-scale just noticeable difference color histogram (PIT2FC-MJND) is proposed in this paper. A multi-scale just noticeable difference (JND) color histogram is firstly constructed by using many distance thresholds and utilized to provide initial cluster centers. Then, a modified type-reduction and de-fuzzification mechanism on this multi-scale JND color histogram is designed for updating membership functions and cluster centers. Moreover, a pareto-based strategy for determining the combination of fuzzifiers is presented by using a global fuzzy compactness function and a fuzzy separation function which are based on the constructed multi-scale JND color histogram. The experimental results on real, Berkeley and Weizmann Images confirm the validity of the proposed approach. (C) 2018 Elsevier Inc. All rights reserved.
机译:虽然间隔类型-2模糊C-means聚类算法(IT2FCM)可以很好地代表数据的不确定性,但仍有一些问题要解决:如何初始化群集中心以及如何确定模糊器。为了解决彩色图像分割的IT2FCM的这些问题,本文提出了一种基于帕累托的间隔-2模糊C-ine,具有多尺度明显差异颜色直方图(PIT2FC-MJND)。通过使用许多距离阈值并利用以提供初始集群中心,首先构造多尺度的显着差异(JND)颜色直方图。然后,设计了该多尺度JND Color Teata图上的修改类型的减少和去模糊化机制,用于更新隶属函数和集群中心。此外,通过使用全局模糊致密度函数和基于构造的多尺度JND颜色直方图的模糊分离功能来提出用于确定模糊机构组合的帕累托的策略。实验结果Real,Berkeley和Weizmann图像确认了所提出的方法的有效性。 (c)2018年Elsevier Inc.保留所有权利。

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