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Extracting Sequential Patterns Based on User Defined Criteria

机译:根据用户定义的准则提取顺序模式

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Sequential pattern extraction is essential in many applications like bioinformatics and consumer behavior analysis. Various frequent sequential pattern mining algorithms have been developed that mine the set of frequent subsequences satisfying a minimum support constraint in a transaction database. In this paper, a hybrid framework to sequential pattern mining problem is proposed which combines clustering together with a novel pattern extraction algorithm that is based on an evaluation function, which utilizes user-defined criteria to select patterns. The proposed solution is applied on Web log data and Web domain, however, it can work in any other domain that involves sequential data as well. Through experimental evaluation on two different datasets, we show that the proposed framework can achieve valuable results for extracting patterns under user defined selection criteria.
机译:在生物信息学和消费者行为分析等许多应用中,顺序模式提取至关重要。已经开发了各种频繁的顺序模式挖掘算法,该算法挖掘交易数据库中满足最小支持约束的频繁子序列集。本文提出了一种用于顺序模式挖掘问题的混合框架,该框架将聚类与基于评估函数的新型模式提取算法相结合,该算法利用用户定义的标准来选择模式。提议的解决方案适用于Web日志数据和Web域,但是,它也可以在涉及顺序数据的任何其他域中工作。通过对两个不同数据集的实验评估,我们证明了该框架可以在根据用户定义的选择标准提取模式方面取得有价值的结果。

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