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A study of some fuzzy cluster validity indices, genetic clustering and application to pixel classification

机译:一些模糊聚类有效性指标,遗传聚类及其在像素分类中的应用研究

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In this article, the effectiveness of variable string length genetic algorithm along with a recently developed fuzzy cluster validity index (PBMF) has been demonstrated for clustering a data set into an unknown number of clusters. The flexibility of a variable string length Genetic Algorithm (VGA) is utilized in conjunction with the fuzzy indices to determine the number of clusters present in a data set as well as a good fuzzy partition of the data for that number of clusters. A comparative study has been performed for different validity indices, namely, PBMF, XB, PE and PC. The results of the fuzzy VGA algorithm are compared with those obtained by the well known FCM algorithm which is applicable only when the number of clusters is fixed a priori. Moreover, another genetic clustering scheme, that also requires fixing the value of the number of clusters, is implemented. The effectiveness of the PBMF index as the optimization criterion along with a genetic fuzzy partitioning technique is demonstrated on a number of artificial and real data sets including a remote sensing image of the city of Kolkata.
机译:在本文中,已经证明了可变字符串长度遗传算法以及最近开发的模糊聚类有效性指数(PBMF)的有效性,可用于将数据集聚类为未知数量的聚类。可变字符串长度遗传算法(VGA)的灵活性与模糊索引一起用于确定数据集中存在的簇数以及该簇数的数据良好模糊划分。已针对不同的有效性指标(即PBMF,XB,PE和PC)进行了比较研究。将模糊VGA算法的结果与通过众所周知的FCM算法获得的结果进行比较,后者仅在先验确定簇数时才适用。此外,实现了另一种遗传聚类方案,该方案也需要固定聚类数的值。在包括加尔各答市的遥感图像在内的许多人工和真实数据集上,都证明了PBMF指数作为优化标准的有效性以及遗传模糊划分技术。

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