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基于兴趣度的高职课程关联规则挖掘 被引量:7
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作者 董辉 《吉首大学学报(自然科学版)》 CAS 2012年第3期41-46,共6页
研究关联规则数据挖掘,讨论兴趣度的概念,设计基于此概念的算法.以高职成绩数据库为处理对象,分析课程间的关联规则,并以兴趣度为约束条件,剔除具有欺骗性的无效关联,挖掘一些合理可靠的课程间有趣的关联规则,从而为高职课程设置和教学... 研究关联规则数据挖掘,讨论兴趣度的概念,设计基于此概念的算法.以高职成绩数据库为处理对象,分析课程间的关联规则,并以兴趣度为约束条件,剔除具有欺骗性的无效关联,挖掘一些合理可靠的课程间有趣的关联规则,从而为高职课程设置和教学大纲的修订提供参考,同时也验证了算法的有效性. 展开更多
关键词 数据挖掘 关联规则 兴趣度 课程设置
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由规则归纳系统中发掘感兴趣模式 被引量:1
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作者 马昕 孙优贤 《计算机应用》 CSCD 北大核心 2003年第4期26-28,共3页
文章借助粗糙集理论 ,提出一种面向大型数据库的规则归纳方法 ;然后在评价规则的置信度和支持度的基础上 ,引入兴趣度准则进一步对规则进行评价 ,并介绍了两种针对不同问题的兴趣度指标 ;提出兴趣模板的概念来描述令人感兴趣的规则特征... 文章借助粗糙集理论 ,提出一种面向大型数据库的规则归纳方法 ;然后在评价规则的置信度和支持度的基础上 ,引入兴趣度准则进一步对规则进行评价 ,并介绍了两种针对不同问题的兴趣度指标 ;提出兴趣模板的概念来描述令人感兴趣的规则特征以强化用户的参与作用 ,提高系统效率。 展开更多
关键词 规则归纳系统 感兴趣模式 数据挖掘 数据库 知识发现 兴趣度 兴趣模板 粗糙集
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基于关联规则兴趣度的课程设置研究 被引量:2
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作者 李佐军 《大理学院学报(综合版)》 CAS 2014年第6期20-23,共4页
介绍数据挖掘和关联规则的概念,引入一个关联规则新的度量值——兴趣度,并使用Visual FoxPro开发了一个关联规则挖掘系统。在设定最小支持度、最小置信度和兴趣度的条件下,使用挖掘系统对计算机专业学生的专业课成绩进行关联分析,通过... 介绍数据挖掘和关联规则的概念,引入一个关联规则新的度量值——兴趣度,并使用Visual FoxPro开发了一个关联规则挖掘系统。在设定最小支持度、最小置信度和兴趣度的条件下,使用挖掘系统对计算机专业学生的专业课成绩进行关联分析,通过分析找出它们间的内在联系,为课程设置提供依据。 展开更多
关键词 关联规则 兴趣度 课程设置
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The information content of rules and rule sets and its application 被引量:4
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作者 HU Dan LI HongXing YU XianChuan 《Science in China(Series F)》 2008年第12期1958-1979,共22页
The information content of rules is categorized into inner mutual information content and outer impartation information content. Actually, the conventional objective interestingness measures based on information theor... The information content of rules is categorized into inner mutual information content and outer impartation information content. Actually, the conventional objective interestingness measures based on information theory are all inner mutual information, which represent the confidence of rules and the mutual information between the antecedent and consequent. Moreover, almost all of these measures lose sight of the outer impartation information, which is conveyed to the user and help the user to make decisions. We put forward the viewpoint that the outer impartation information content of rules and rule sets can be represented by the relations from input universe to output universe. By binary relations, the interaction of rules in a rule set can be easily represented by operators: union and intersection. Based on the entropy of relations, the outer impartation information content of rules and rule sets are well measured. Then, the conditional information content of rules and rule sets, the independence of rules and rule sets and the inconsistent knowledge of rule sets are defined and measured. The properties of these new measures are discussed and some interesting results are proven, such as the information content of a rule set may be bigger than the sum of the information content of rules in the rule set, and the conditional information content of rules may be negative. At last, the applications of these new measures are discussed. The new method for the appraisement of rule mining algorithm, and two rule pruning algorithms, λ-choice and RPClC, are put forward. These new methods and algorithms have predominance in satisfying the need of more efficient decision information. 展开更多
关键词 rule interestingness measure information content of rules information content of rule sets conditional information content of rules and rule sets
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