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基于排序的关联分类算法
引用本文:朱晓燕,宋擒豹. 基于排序的关联分类算法[J]. 计算机科学, 2009, 36(7): 204-207
作者姓名:朱晓燕  宋擒豹
作者单位:西安交通大学计算机科学与技术系,西安,710049
基金项目:国家自然科学基金项目,国家"863"计划项目,教育部"新世纪优秀人才支持计划"项目 
摘    要:提出了一种基于排序的关联分类算法.利用基于规则的分类方法中择优方法偏爱高精度规则的思想和考虑尽可能多的规则,改进了CBA(Classification Based on Associations)只根据少数几条覆盖训练集的规则构造分类器的片面性.首先采用关联规则挖掘算法产生后件为类标号的关联规则,然后根据长度、置信度、支持度和提升度等对规则进行排序,并在排序时删除对分类结果没有影响的规则.排序后的规则加上一个默认分类便构成最终的分类器.选用20个UCI公共数据集的实验结果表明,提出的算法比CBA具有更高的平均分类精度.

关 键 词:分类  关联规则  排序
收稿时间:2008-09-24
修稿时间:2008-12-16

Classification Mining Using Association Rules Based on Rule Ranking
ZHU Xiao-yan,SONG Qin-bao. Classification Mining Using Association Rules Based on Rule Ranking[J]. Computer Science, 2009, 36(7): 204-207
Authors:ZHU Xiao-yan  SONG Qin-bao
Affiliation:Department of Computer Science and Technology;Xi'an Jiaotong University;Xi'an 710049;China
Abstract:A new associative classification algorithm based on rule ranking was proposed.The proposed method takes advantage of the optimal rule method preferring high quality rules.At the same time,it takes into consideration as many rules as possible,which can improve the bias of CBA that builds a classifier according to only several rules covering the training dataset.In the proposed algorithm,after the generation of association rules whose consequences are class labels,rules are ranked according to their length,co...
Keywords:Classification  Association rules  Ranking  
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