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基于人工免疫聚类算法的电梯交通流分析
引用本文:李中华,朱燕飞,李春华,毛宗源.基于人工免疫聚类算法的电梯交通流分析[J].华南理工大学学报(自然科学版),2003,31(12):26-29.
作者姓名:李中华  朱燕飞  李春华  毛宗源
作者单位:华南理工大学,自动化科学与工程学院,广东,广州,510640
摘    要:采用人工免疫聚类算法对某大楼一周内的电梯交通流进行了分析.利用人工免疫算法的免疫激励和免疫抑制机制,对电梯交通的5分钟原始客流数据进行压缩,得到了特点鲜明的电梯交通流人工免疫记忆数据集.以最小支撑树为工具,采用最短距离法对记忆数据集进行分类,所得结果清晰地体现了电梯交通流的实际特性.该算法为电梯群的控制与调度提供了有力的理论支持.

关 键 词:人工免疫系统  聚类分析  电梯交通流  电梯群控算法
文章编号:1000-565X(2003)12-0026-04
修稿时间:2003年6月10日

Elevator Traffic Flow Analysis Based on Artificial Immune Clustering Algorithm
Li Zhong,hua,Zhu Yan,fei,Li Chun,hua,Mao Zong,yuan.Elevator Traffic Flow Analysis Based on Artificial Immune Clustering Algorithm[J].Journal of South China University of Technology(Natural Science Edition),2003,31(12):26-29.
Authors:Li Zhong  hua  Zhu Yan  fei  Li Chun  hua  Mao Zong  yuan
Abstract:By employing an artificial immune clustering algorithm, the elevator traffic flow in a certain building during one week was analyzed. The promotion and suppression mechanisms of artificial immune algorithm were exploited to compress the original elevator traffic flow data collected in 5 min, and a distinct elevator traffic flow memory dataset was obtained. The memory dataset was then classified on the basis of two methods: the Minimal Spanning Tree and the Minimal Distance Method. The result of classification clearly reveals the real feature of elevator traffic. Therefore, the approach addressed here may provide a powerful theoretical support for elevator group control.
Keywords:artificial immune system  clustering analysis  traffic flow  elevator
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