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Hybrid Technique for Frequent Pattern Extraction from Sequential Database

机译:顺序数据库频繁图案提取的混合技术

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Data mining has became a familiar tool for mining stored value from the large scale databases that are known as Sequential Database. These databases has large number of itemsets that can arrive frequently and sequentially, it can also predict the users behaviors. The evaluation of user behavior is done by using Sequential pattern mining where the frequent patterns extracted with several limitations. Even the previous sequential pattern techniques used some limitations to extract those frequent patterns but these techniques does not generated the more reliable patterns .Thus, it is very complex to the decision makers for evaluation of user behavior. In this paper, to solve this problem a technique called hybrid pattern is used which has both time based limitation and space limitation and it is used to extract more feasible pattern from sequential database. Initially, the space limitation is applied to break the sequential database using the maximum and minimum threshold values. To this end, the time based limitation is applied to extract more feasible patterns where a bury-time arrival rate is computed to extract the reliable patterns.
机译:数据挖掘成为从称为顺序数据库的大规模数据库中挖掘存储值的熟悉工具。这些数据库具有大量的项目集,可以经常和顺序到达,它还可以预测用户行为。通过使用顺序模式挖掘来完成用户行为的评估,其中用几个限制提取的频繁模式。即使是以前的序列模式技术使用了一些限制来提取这些频繁模式,但这些技术并没有产生更可靠的方式。因此,它是对决策者对用户行为的评价很复杂。在本文中,为了解决这个问题,使用了一种称为混合模式的技术,其具有基于时间的限制和空间限制,并且它用于从顺序数据库中提取更可行的模式。最初,应用空间限制以使用最大和最小阈值来打破顺序数据库。为此,应用基于时间的限制来提取更可行的模式,其中计算伯里时间到达率以提取可靠模式。

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