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基于MFCM的改进聚类算法及其在交通中的应用
引用本文:贺国光,鲁静罡,唐福萍,陈宇红.基于MFCM的改进聚类算法及其在交通中的应用[J].长沙交通学院学报,2007,23(1):51-55,62.
作者姓名:贺国光  鲁静罡  唐福萍  陈宇红
作者单位:1. 天津大学,系统工程研究所,天津,300072
2. 云南省交警总队,科技处,云南,昆明,650224
基金项目:国家自然科学基金,云南省省院省校科技合作项目
摘    要:在交通流状态模糊化的过程中,对已有的交通模糊控制研究引入了太多的主观因素.为了解决这个问题,提出了一种基于MFCM算法的分级递减聚类算法,利用MFCM算法寻找类中心,再自适应确定该类中心的隶属度阈值,将聚类进行分级处理,实现未知类别数数据集的聚类.将改进算法应用到交通流状态聚类中,可以更科学地确定交通流状态的聚类数和各类模糊隶属度函数的结构等,最后,通过算例,说明了该算法对于未知聚类数及服从高斯分布的数据集具有聚类效果好、收敛速度快的特点.

关 键 词:交通工程  交通流状态  模糊聚类  分级递减  MFCM算法
文章编号:1000-9779(2007)01-0051-05
收稿时间:2006-09-04
修稿时间:2006-09-04

Improved clustering algorithm based on modified fuzzy C-means applied to the traffic
HE Guo-guang,LU Jing-gang,TANG Fu-ping,CHEN Yu-hong.Improved clustering algorithm based on modified fuzzy C-means applied to the traffic[J].Journal of Changsha Communications University,2007,23(1):51-55,62.
Authors:HE Guo-guang  LU Jing-gang  TANG Fu-ping  CHEN Yu-hong
Institution:1. System Engineering Research Institute,Tianjin University,Tianjin 300072, China ; 2. Science and Technology Department of Traffic Management Bureau in Yunnan, Kunming 650224, China
Abstract:There were many subjective factors in the fuzzification of traffic flow states of existed research about traffic fuzzy control.A hierarchical subtractive clustering algorithm based on modified fuzzy C-means is proposed.It finds that the cluster centers using modified fuzzy C-means clustering algorithm give the membership threshold of the centers adaptively,perform the clustering progressively and then the clustering for the data set with unknown number of clusters is completed.The improved algorithm is applied to the fuzzification of traffic flow states.It can give the number of categories of traffic flow states and the configuration of all kinds of membership functions more accurately.An example is given to show that the proposed algorithm clusters the Gaussian distributed data patterns without a prior information about the number of clusters with good effectiveness and fast clustering convergence.
Keywords:traffic engineering  traffic flow states  fuzzy cluster  hierarchical subtractive clustering  MFCM algorithm
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