Please use this identifier to cite or link to this item: http://dspace.unimap.edu.my:80/xmlui/handle/123456789/35577
Title: Outlier rejection fuzzy c-means (ORFCM) algorithm for image segmentation
Authors: Fasahat Ullah, Siddiqui
Nor Ashidi, Mat Isa, Assoc. Prof. Dr.
Abid, Yahya, Dr.
ashidi@eng.usm.my
abid@unimap.edu.my
Keywords: Clustering
Fuzzy c-means
K-means
K-means
Outlier
Outlier rejection fuzzy c-means
Issue Date: 2013
Publisher: Scientific and Technical Research Council of Turkey
Citation: Turkish Journal of Electrical Engineering and Computer Sciences, vol. 21(6), 2013, pages 1801-1819
Abstract: This paper presents a fuzzy clustering-based technique for image segmentation. Many attempts have been put into practice to increase the conventional fuzzy c-means (FCM) performance. In this paper, the sensitivity of the soft membership function of the FCM algorithm to the outlier is considered and the new exponent operator on the Euclidean distance is implemented in the membership function to improve the outlier rejection characteristics of the FCM. The comparative quantitative and qualitative studies are performed among the conventional k-means (KM), moving KM, and FCM algorithms; the latest state-of-the-art clustering algorithms, namely the adaptive fuzzy moving KM , adaptive fuzzy KM, and new weighted FCM algorithms; and the proposed outlier rejection FCM (ORFCM) algorithm. It is revealed from the experimental results that the ORFCM algorithm outperforms the other clustering algorithms in various evaluation functions.
Description: Link to publisher's homepage at www.tubitak.gov.tr/en
URI: http://mistug.tubitak.gov.tr/bdyim/toc.php?dergi=elk&yilsayi=2013/6
http://dspace.unimap.edu.my:80/dspace/handle/123456789/35577
ISSN: 1300-0632 (P)
1303-6203 (O)
Appears in Collections:School of Computer and Communication Engineering (Articles)

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