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A Heuristic Data Sampling Approach for Association Rule Classification under a Big Data Environment

机译:大数据环境下关联规则分类的启发式数据采样方法

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This study proposes a heuristic data sampling approach to solve the problem of mining big data without changing the association rule classification method. The proposed heuristic data sampling approach consists of two parts. The first part is a heuristic sampling method applied in the initial phase, which samples representative data from a big data set with important, discriminative attributes. Then the second part deals with the incremental big data problem. Merging the sampled data from both the preliminary and incremental data sets and their classifiers, it is possible to apply them to verify the combined classifier.
机译:本研究提出了一种启发式数据采样方法,以解决在不更改关联规则分类方法的情况下挖掘大数据的问题。拟议的启发式数据采样方法包括两部分。第一部分是在初始阶段应用的启发式采样方法,该方法从具有重要,可区分属性的大数据集中对代表性数据进行采样。然后第二部分处理增量大数据问题。合并来自初始数据集和增量数据集及其分类器的采样数据,可以应用它们来验证组合的分类器。

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