DocumentCode :
3732066
Title :
Fuzzy Clustering Research Based on Intelligent Computing
Author :
Jun Liu;Xiaoli Wu;Xiaoyuan Luo
Author_Institution :
Heihe Univ., Heihe, China
fYear :
2015
Firstpage :
429
Lastpage :
432
Abstract :
FCM is sensitive to initialization and tends to result in local minimum in iterations. This paper studies the crossover and mutation probability of genetic algorithm and presents a new crossover and mutation probability. The proposed clustering scheme based on genetic algorithm and fuzzy c-means takes full advantage of the global optimization of genetic algorithm and the local search ability of FCM. The experiment results show that the proposed scheme has higher accuracy than traditional scheme.
Keywords :
"Clustering algorithms","Encoding","Algorithm design and analysis","Genetic algorithms","Sociology","Statistics","Convergence"
Publisher :
ieee
Conference_Titel :
Intelligent Transportation, Big Data and Smart City (ICITBS), 2015 International Conference on
Type :
conf
DOI :
10.1109/ICITBS.2015.112
Filename :
7384058
Link To Document :
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