DocumentCode :
3006903
Title :
Improved Fast Fuzzy C-Means Algorithm for Medical MR Images Segmentation
Author :
Li, Min ; Huang, Tinglei ; Zhu, Gangqiang
Author_Institution :
Yangtze Univ., Jingzhou
fYear :
2008
fDate :
25-26 Sept. 2008
Firstpage :
285
Lastpage :
288
Abstract :
Fuzzy c-means (FCM) clustering algorithm has been widely used in automated image segmentation. However, the standard FCM algorithm takes a long time to partition a large dataset. In addition, in current fuzzy cluster algorithms it is difficult to determine the cluster centers. This paper proposes a modified FCM algorithm for MR (magnetic resonance) brain images segmentation. This method fetches in statistic histogram information for minimizing the iteration times, and in the iteration process, the optimal number of clusters is automatically determined. Using this method, an optimal classification rate is obtained in the test dataset, which includes large stochastic noises. The experiment results have shown that the segmentation method proposed in this paper is more accurate and faster than the standard FCM or the fast fuzzy c-means (FFCM) algorithm.
Keywords :
biomedical MRI; brain; fuzzy set theory; image classification; image segmentation; iterative methods; medical image processing; neurophysiology; pattern clustering; FCM clustering algorithm; fuzzy c-means algorithm; iteration process; magnetic resonance brain image; medical MR image segmentation; optimal classification rate; statistic histogram information; stochastic noise; Biomedical imaging; Brain; Clustering algorithms; Histograms; Image segmentation; Magnetic resonance; Partitioning algorithms; Statistics; Stochastic resonance; Testing; Fuzzy c-means clustering algorithm; Magnetic Resonance; OTSU algorithm;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Genetic and Evolutionary Computing, 2008. WGEC '08. Second International Conference on
Conference_Location :
Hubei
Print_ISBN :
978-0-7695-3334-6
Type :
conf
DOI :
10.1109/WGEC.2008.117
Filename :
4637446
Link To Document :
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