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基于PSO的模糊聚类算法
引用本文:许磊,张凤鸣.基于PSO的模糊聚类算法[J].计算机工程与设计,2006,27(21):4128-4129.
作者姓名:许磊  张凤鸣
作者单位:空军工程大学,工程学院,陕西,西安,710038;空军工程大学,工程学院,陕西,西安,710038
摘    要:提出了一种基于模糊C-均值算法和粒子群算法的混合聚类算法。该算法结合PSO的全局搜索和FCM局部搜索的特点,将PSO优化聚类结果作为后续FCM算法的初始值,有效地克服了FCM对初始值敏感、易陷入局部最优和PSO算法局部搜索较弱的问题,同时增强了跳出局部最优的能力。实验表明,新算法得到的目标函数值更小,并能减小分类错误率,聚类效果优于单一使用FCM或PSO。

关 键 词:混合聚类  粒子群优化算法  模糊C-均值算法  全局优化  分类错误率
文章编号:1000-7024(2006)21-4128-02
收稿时间:2005-10-08
修稿时间:2005-10-08

Fuzzy clustering algorithm based on PSO
XU Lei,ZHANG Feng-ming.Fuzzy clustering algorithm based on PSO[J].Computer Engineering and Design,2006,27(21):4128-4129.
Authors:XU Lei  ZHANG Feng-ming
Abstract:A new hybrid clustering algorithm based on particle swarm optimization and FCM algorithm is proposed. By incorporating the local and global search and taking the clustering result of PSO as the initialized value of the FCM, the algorithm eliminates FCM trapped local optimum and being sensitive to initial value effectively, and solves weaker local search of PSO. The ability of breaking away from the local optimum is improved by the new algorithm. The experimental results show that new algorithm not only has better goal function value but also reduces the classification error rate. The clustering performances are better than those of only using the FCM or the PSO.
Keywords:hybrid clustering  particle swarm optimization  fuzzy C- mean algorithm  global optimization  classification error rate
本文献已被 CNKI 维普 万方数据 等数据库收录!
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