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Picture fuzzy clustering: a new computational intelligence method

机译:图片模糊聚类:一种新的计算智能方法

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摘要

Fuzzy clustering especially fuzzy -means (FCM) is considered as a useful tool in the processes of pattern recognition and knowledge discovery from a database; thus being applied to various crucial, socioeconomic applications. Nevertheless, the clustering quality of FCM is not high since this algorithm is deployed on the basis of the traditional fuzzy sets, which have some limitations in the membership representation, the determination of hesitancy and the vagueness of prototype parameters. Various improvement versions of FCM on some extensions of the traditional fuzzy sets have been proposed to tackle with those limitations. In this paper, we consider another improvement of FCM on the picture fuzzy sets, which is a generalization of the traditional fuzzy sets and the intuitionistic fuzzy sets, and present a novel picture fuzzy clustering algorithm, the so-called FC-PFS. A numerical example on the IRIS dataset is conducted to illustrate the activities of the proposed algorithm. The experimental results on various benchmark datasets of UCI Machine Learning Repository under different scenarios of parameters of the algorithm reveal that FC-PFS has better clustering quality than some relevant clustering algorithms such as FCM, IFCM, KFCM and KIFCM.
机译:模糊聚类尤其是模糊均值(FCM)被认为是模式识别和从数据库发现知识的有用工具。因此被应用于各种关键的社会经济应用。然而,由于该算法是在传统模糊集的基础上部署的,因此FCM的聚类质量并不高,这在隶属表示,犹豫性的确定和原型参数的模糊性方面有一定的局限性。已经提出了对传统模糊集的某些扩展的FCM的各种改进版本,以解决这些限制。在本文中,我们考虑了FCM对图片模糊集的另一种改进,它是对传统模糊集和直觉模糊集的概括,并提出了一种新颖的图片模糊聚类算法,即所谓的FC-PFS。在IRIS数据集上进行了数值示例,以说明所提出算法的活动。在算法参数不同的情况下,UCI机器学习存储库的各种基准数据集的实验结果表明,FC-PFS的聚类质量优于某些相关的聚类算法,例如FCM,IFCM,KFCM和KIFCM。

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