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客户分析中的数据挖掘算法比较研究
引用本文:祖巧红,陈定方,胡吉全.客户分析中的数据挖掘算法比较研究[J].湖北工业大学学报,2006,21(3):7-8,11.
作者姓名:祖巧红  陈定方  胡吉全
作者单位:武汉理工大学物流工程学院,湖北,武汉,430063;武汉理工大学物流工程学院,湖北,武汉,430063;武汉理工大学物流工程学院,湖北,武汉,430063
摘    要:对回归预测、决策树、神经网络、聚类和邻点预测、规则导引等5种数据挖掘预测算法分别进行介绍,并结合实例对各种方法适用情况进行了比较,以便有针对性地对客户行为采用有效的预测方法.其中:回归预测根据历史记录分析得出总体趋势;决策树方法是一种“二分制”数据分析和预测方法,主要用于对数据进行归类分割和预测,来解决定性分析的问题;神经网络方法主要对客户行为进行分析和预测,从定量的角度进行分析.

关 键 词:数据挖掘  决策树  神经网络  聚类  邻点预测
文章编号:1003-4684(2006)06-0007-02
收稿时间:2006-03-15
修稿时间:2006-03-15

Technology of Data Mining in Client Analysis
ZU Qiao-hong,CHEN Ding-fang,HU Ji-quan.Technology of Data Mining in Client Analysis[J].Journal of Hubei University of Technology,2006,21(3):7-8,11.
Authors:ZU Qiao-hong  CHEN Ding-fang  HU Ji-quan
Affiliation:School of Logistics Engin. ,Wuhan Univ. of Technology, Wuhan 430063, China
Abstract:In this paper,five popular forecasting algorithms of data mining are discussed separately.At the same time,the situations fit for the algorithms are compared combined with the examples.Then,the efficient forecasting methods can be adopted when the different situations of clients are analyzed.Regression forecasting which often deduces the general trend according with the historical records is traditional.The Decision Tree method is a data analysis and forecasting method.It is used mainly to divide in classification and forecast so as to solve the problem of qualitative analysis.The method of Neural Networks mainly analyzes and forecasts the clients' behaviors with the quantitative point of view.
Keywords:data mining  decision tree  neural networks  clustering  nearest neighbor forecastingn  
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