Image segmentation algorithm based on improved genetic algorithms and grey relational degree analysis

Gui Yufeng, Su Peng, Chen Xianqiao
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引用次数: 1

Abstract

In order to obtain the optimal segmentation threshold and get rid of the local optimal solution of image segmentation, this paper reconstructs crossover and mutation rate which will not be zero at any time. Meanwhile, crossover and mutation genetic operations are used to search the optimal segmentation threshold, where the fitness function is the largest two-dimensional entropy function. Then, grey correlation analysis, which can get comprehensive correlation between regions, is performed on splitting images to guide region merging. Simulation results show that this method can effectively segment the target area with certain noise immunity.
基于改进遗传算法和灰色关联度分析的图像分割算法
为了获得最优分割阈值,摆脱图像分割的局部最优解,本文重构了在任何时候都不为零的交叉突变率。同时,采用交叉和突变遗传操作搜索最优分割阈值,其中适应度函数为最大二维熵函数。然后,对分割图像进行灰色关联分析,得到区域间的综合关联,指导区域合并;仿真结果表明,该方法能有效分割目标区域,并具有一定的抗噪性。
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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