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基于DSCFCI_tree的带项目约束的数据流频繁闭合模式挖掘算法

Algorithm for mining frequent closed patterns with item constraint over data streams based on DSCFCI_tree

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【作者】 胡为成王本年程转流

【Author】 HU Wei-cheng1,WANG Ben-nian1,CHENG Zhuan-liu 1,2 (1.Institute of Information Technology & Engineering Management,Tongling College,Tongling 244000,China;2.College of Computer Science,Hefei Technology University,Hefei 230009,China)

【机构】 铜陵学院信息技术与工程管理研究所合肥工业大学计算机与信息学院

【摘要】 根据数据流的特点,提出了一种挖掘约束频繁闭合项集的算法,该算法将数据流分段,用DSCFCI_tree动态存储潜在约束频繁闭合项集,对每一批到来的数据流,首先建立局部DSCFCI_tree,进而对全局DSCFCI_tree进行有效更新并剪枝,从而有效地挖掘整个数据流中的约束频繁闭合模式.实验表明,该算法具有很好的时间和空间效率.

【Abstract】 According to the characteristics of data streams,a new algorithm was proposed for mining constrainted frequent closed patterns.The data stream was divided into a set of segments,and a DSCFCI_tree was used to store the potential constrainted frequent closed patterns dynamically.With the arrival of each batch of data,the algorithm first built a corresponding local DSCFCI_tree,then updated and pruned the global DSCFCI_tree effectively to mine the constrainted frequent closed patterns in the entire data stream.The experiments and analysis show that the algorithm has good performance.

【基金】 安徽省高等学校青年教师科研资助计划项目(2008jq1143);安徽省自然科学基金(090416247);安徽省高等学校自然科学研究项目(KJ2007B236)资助
  • 【文献出处】 中国科学技术大学学报 ,Journal of University of Science and Technology of China , 编辑部邮箱 ,2009年11期
  • 【分类号】TP311.13
  • 【被引频次】8
  • 【下载频次】85
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