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Genetic algorithm and self organizing map based fuzzy hybrid intelligent method for color image segmentation

机译:基于遗传算法和自组织图的模糊混合智能彩色图像分割方法

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The grouping of pixels based on some similarity criteria is called image segmentation. In this paper the problem of color image segmentation is considered as a clustering problem and a fixed length genetic algorithm (GA) is used to handle it. The effectiveness of GA depends on the objective function (fitness function) and the initialization of the population. A new objective function is proposed to evaluate the quality of the segmentation and the fitness of a chromosome. In fixed length genetic algorithm the chromosomes have same length, which is normally set by the user. Here, a self organizing map (SOM) is used to determine the number of segments in order to set the length of a chromosome automatically. An opposition based strategy is adopted for the initialization of the population in order to diversify the search process. In some cases the proposed method makes the small regions of an image as separate segments, which leads to noisy segmentation. A simple ad hoc mechanism is devised to refine the noisy segmentation. The qualitative and quantitative results show that the proposed method performs better than the state-of-the-art methods. (C )2015 Elsevier B.V. All rights reserved.
机译:基于一些相似性标准的像素分组称为图像分割。本文将彩色图像分割问题视为一个聚类问题,并使用固定长度遗传算法(GA)对其进行处理。 GA的有效性取决于目标函数(适应性函数)和总体初始化。提出了一种新的目标函数来评估分割的质量和染色体的适应性。在固定长度的遗传算法中,染色体具有相同的长度,通常由用户设置。在这里,自组织图(SOM)用于确定段数,以便自动设置染色体的长度。为了使搜索过程多样化,采用了基于对立的策略来初始化种群。在某些情况下,所提出的方法将图像的小区域作为单独的片段,从而导致噪点分割。设计了一种简单的临时机制来细化噪声分割。定性和定量结果表明,所提出的方法的性能优于最新方法。 (C)2015 Elsevier B.V.保留所有权利。

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