dwfp - miner:在数据流上挖掘封闭加权频繁模式

Jie Wang, Yu Zeng
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引用次数: 2

摘要

封闭频繁模式挖掘可以减少频繁模式的数量,并保留足够的结果信息。本文讨论了数据流上的封闭加权频繁模式挖掘问题。连续、无界和高速的数据流使得封闭加权频繁模式挖掘成为一项困难的任务。提出了一种基于滑动窗口的有效算法dwfp - miner,该算法可以从最近的数据中发现封闭的加权频繁模式。证明了封闭和加权频繁约束的正确顺序,并采用一种新的有效的DS_CWFP数据结构来动态维护事务信息,同时维护当前滑动窗口中的封闭加权频繁模式。讨论了该算法的具体内容。通过实验研究,评价了DCWFP-Miner的良好效果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
DCWFP-Miner: Mining closed weighted frequent patterns over data streams
closed frequent pattern mining can reduces the number of frequent patterns and keep sufficient result information. In this paper, we discuss the closed weighted frequent pattern mining problem over data streams. Continuous, unbounded and high-speed data streams make closed weighted frequent pattern mining become a difficult task. We present an efficient algorithm DCWFP-Miner, which is based on sliding window and can discover closed weighted frequent pattern from the recent data. The right order of the closed and weighted frequent constraints is proved and a new efficient DS_CWFP data structure is used to dynamically maintain the information of transactions and also maintain the closed weighted frequent patterns has been found in the current sliding window. The detail of the algorithm DCWFP-Miner is also discussed. Experimental studies are performed to evaluate the good effectiveness of DCWFP-Miner.
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